Genome-wide identification of the YABBY gene family and functional characterization of TaYABBY4A in wheat (Triticum aestivum L.)

preprint OA: closed CC-BY-4.0
📄 Open PDF Full text JSON View at publisher

Abstract

Abstract Background YABBYs are plant-specific transcription factors that play crucial roles in plant growth, development, and stress responses. Despite extensive studies in various plant species, a systematic analysis of YABBYs in wheat grains is still lacking. Results In this study, 21 TaYABBYs were identified using the Chinese Spring wheat genome database and were divided into five subfamilies through phylogenetic analysis. Gene collinearity analysis revealed the evolutionary characteristics of the TaYABBYs . Analysis of cis-acting elements in the promoter region identified elements related to endosperm development. SNP analysis uncovered genetic variations within the YABBY gene family. Meanwhile, RNA-Seq and qRT-PCR techniques were employed to explore the expression patterns of TaYABBYs , and the results showed that these genes are differentially expressed in different wheat tissues. Additionally, we selected TaYABBY4A from the CRC subfamily for overexpression in Arabidopsis thaliana to verify the function of TaYABBY s. Overexpression of the TaYABBY4A in Arabidopsis resulted in delayed bolting and flowering, as well as reductions in the number and diameter of rosette leaves and seed size. Conclusions This study further confirms that the YABBY gene family plays an important regulatory role in the growth and development of wheat, providing a reference for in-depth exploration of the functions of YABBY s in wheat.
Full text 172,804 characters · extracted from preprint-html · click to expand
Genome-wide identification of the YABBY gene family and functional characterization of TaYABBY4A in wheat (Triticum aestivum L.) | Research Square window.SnipcartSettings = { analytics: { enabled: false } }; (function() { var accessVector = localStorage.getItem('access_vector') || ''; window.dataLayer = window.dataLayer || []; if (accessVector) { window.dataLayer.push({ user: { profile: { profileInfo: { snid: accessVector } } } }); } })(); (function(w,d,s,l,i){w[l]=w[l]||[];w[l].push({'gtm.start':new Date().getTime(),event:'gtm.js'});var f=d.getElementsByTagName(s)[0],j=d.createElement(s),dl=l!='dataLayer'?'&l='+l:'';j.async=true;j.src='https://www.googletagmanager.com/gtm.js?id='+i+dl;f.parentNode.insertBefore(j,f);})(window,document,'script','dataLayer','GTM-K279D39R'); Browse Preprints In Review Journals COVID-19 Preprints AJE Video Bytes Research Tools Research Promotion AJE Professional Editing AJE Rubriq About Preprint Platform In Review Editorial Policies Our Team Advisory Board Help Center Sign In Submit a Preprint Cite Share Download PDF Research Article Genome-wide identification of the YABBY gene family and functional characterization of TaYABBY4A in wheat (Triticum aestivum L.) Yuwei Jia, Xinyu Liu, Rongdi Guo, Xiaofei Ma, Hutai Ji, Yang Zhang, and 1 more This is a preprint; it has not been peer reviewed by a journal. https://doi.org/ 10.21203/rs.3.rs-7691254/v1 This work is licensed under a CC BY 4.0 License Status: Published Journal Publication published 30 Dec, 2025 Read the published version in BMC Plant Biology → Version 1 posted 13 You are reading this latest preprint version Abstract Background YABBYs are plant-specific transcription factors that play crucial roles in plant growth, development, and stress responses. Despite extensive studies in various plant species, a systematic analysis of YABBYs in wheat grains is still lacking. Results In this study, 21 TaYABBYs were identified using the Chinese Spring wheat genome database and were divided into five subfamilies through phylogenetic analysis. Gene collinearity analysis revealed the evolutionary characteristics of the TaYABBYs . Analysis of cis-acting elements in the promoter region identified elements related to endosperm development. SNP analysis uncovered genetic variations within the YABBY gene family. Meanwhile, RNA-Seq and qRT-PCR techniques were employed to explore the expression patterns of TaYABBYs , and the results showed that these genes are differentially expressed in different wheat tissues. Additionally, we selected TaYABBY4A from the CRC subfamily for overexpression in Arabidopsis thaliana to verify the function of TaYABBY s. Overexpression of the TaYABBY4A in Arabidopsis resulted in delayed bolting and flowering, as well as reductions in the number and diameter of rosette leaves and seed size. Conclusions This study further confirms that the YABBY gene family plays an important regulatory role in the growth and development of wheat, providing a reference for in-depth exploration of the functions of YABBY s in wheat. wheat YABBY gene family bioinformatics analysis functional characterization plant development Figures Figure 1 Figure 2 Figure 3 Figure 4 Figure 5 Figure 6 Figure 7 Figure 8 Introduction Transcription factors (TFs) are key regulators of gene expression, either alone or combined with other factors, by binding to the cis-elements of their target genes. One gene can control an important agronomic trait. As a small family of transcription factors, the YABBYs are predominantly observed in seed plants.[ 1 ]. A feature of the members of this family is that they share two highly conserved domains: the classical C2C2 zinc finger domain in N-terminal region, and the basic helix-loop-helix (bHLH) in the C-terminal region, called the YABBY domain[ 2 ]. YABBYs can regulate gene expression as both activators and suppressors, and the functions of YABBYs correlate with their expression profiles directly or indirectly [ 3 – 5 ]. Studies have found that YABBYs function in plant development and growth[ 6 , 7 ]. To date, researchers have identified the YABBY gene family in different plant species through genome-wide analysis[ 8 ]. A total of 6 YABBYs had been identified in Arabidopsis thaliana [ 5 ], 8 in Oryza sativa [ 9 ], 17 in Glycine max [ 10 ], 7 in Vitis vinifera L. [ 11 ], and 9 in Solanum lycopersicum L. [ 12 ]. During rice domestication, OsSh1 and ObSh3 played a key role in promoting seed shattering[ 13 ]. The FIL/YAB3 group genes ( OsYABBY3/4/5 ) were highly transcribed in the spikelets, while OsDL was mainly expressed in pistils, inner and outer epidermis, and spikelets[ 13 ]. Overexpression of grape VvYABBY4 in tomato was found to affect plant growth and development as well as fruit formation[ 14 ]. Orashakova discovered that EcCRC transcription was downregulated during ovule development[ 15 ].Some identified YABBY homologous genes in cotton were expressed in ovules[ 16 ]. Overexpression of SiDL from the YABBY family of foxtail millet in Arabidopsis resulted in dwarf plants and reduced fruit and seed diameters[ 17 ]. These research results indicate that YABBYs play an important role in plant reproductive growth and development. Recent studies have shown that YABBYs have important regulatory functions in gramineous crops[ 18 ]. Wheat ( Triticum aestivum L.) is a globally crucial food crop, with its grain development directly determining yield and quality[ 19 ]. TFs are pivotal in the complex regulatory network of wheat grain development[ 7 ]. However, their specific role in wheat grain development remains unclear. In this study, a genome-wide search method utilizing the latest Chinese Spring wheat genome information was employed to identify 21 TaYABBYs . Through bioinformatics analysis, the physicochemical properties, phylogenetic relationships, gene structures, conserved motifs, chromosomal locations, and cis-acting promoter elements of these genes were systematically analyzed. Haplotype analysis revealed the genetic variation characteristics of TaYABBYs in wheat. Subsequently, based on publicly available transcriptome data and RNA-seq data of developing grains (grain filling stage) from Yaomai 36, Pinyu 8175, Pinyu 8155, and Yaomai 30, the expression patterns of TaYABBYs in different wheat tissues and endosperm development stages were analyzed. Finally, the function of TaYABBY4A was identified in Arabidopsis thaliana . This study aims to analyze wheat YABBYs and their functional characteristics at the genome-wide level, laying a foundation for in-depth exploration of their evolutionary history and functional mechanisms. Results Identification and sequence characteristics analysis of TaYABBYs Using the Pfam and Phytozome v13 programs, 21 members of the YABBY gene family were identified in the Chinese Spring genome. Analysis of the amino acid sequences produced the sequence logo and annotation of the YABBY domain (Fig. 1 ). All TaYABBYs possess two conserved DNA-binding domains: an N-terminal C2-C2 zinc finger domain and a C-terminal YABBY domain. Within the C2-C2 zinc finger domain, the cysteine (C) and histidine (H) residues responsible for Zn²⁺ binding are conserved. At the C-terminus, within the YABBY domain, 27 amino acid residues are 100% conserved, including five alanine (A), three proline (P), two serine (S), and three isoleucine (I) residues. This conservation is essential for the domain's structure and function. Notably, TaYABBY2A/B/D and TaYABBY4A/5B/5D exhibit higher variability in both domains, suggesting functional diversity. This divergence may equip these genes with unique roles in plant growth, development, and environmental responses. According to the annotation of the wheat genome, among the 21 wheat chromosomes, 21 TaYABBY s were found to be unevenly distributed across 15 chromosomes (Table 1). Based on their consecutive chromosomal positions and homology relationships, these YABBYs were systematically designated as TaYABBY1A - TaYABBY8D . The coding sequence (CDS) lengths of the TaYABBYs varied significantly. The deduced length of CDS ranged from 495 bp ( TaYABBY2D ) to 894 bp ( TaYABBY1A/B ). Amino acid sequence lengths also varied widely, from 164 aa (TaYABBY2D) to 297 aa (TaYABBY1A/B), leading to substantial differences in predicted protein molecular weights, ranging from 17.76 kDa (TaYABBY2D) to 31.44 kDa (TaYABBY1B). Additionally, the theoretical isoelectric points (pI) of these proteins varied from 5.62 (TaYABBY2A) to 9.48 (TaYABBY7B). The subcellular localization of all 21 TaYABBYs was predicted by Plant-mPLoc, and the results indicated that these genes are situated in the nucleus. Phylogenetic analysis, chromosomal location, gene structure, and conserved motifs of Phylogenetic analysis, chromosomal location, gene structure, and conserved motifs of TaYABBYs To investigate the evolutionary relationships between wheat and other plant species, a comprehensive phylogenetic tree was constructed using the Neighbor-Joining (NJ) method (Fig. 2 A). Like Arabidopsis, TaYABBYs were categorized into five subfamilies: FIL/YAB3, YAB2, CRC, INO, and YAB5. However, the wheat TaYABBYs do not include the YAB5 subfamily. Within these, the YAB2 and FIL/YAB3 subfamilies had a larger number of members (with 6 in YAB2 and 9 in FIL/YAB3), while INO and CRC had the fewest, with 3 members each. The findings indicate that YABBYs in wheat are relatively conserved and may have acquired functional diversity throughout wheat evolution, potentially associated with its distinctive physiological and morphological characteristics. A total of 21 TaYABBY s were identified within the wheat genome, distributed unevenly across 15 of the 21 chromosomes (Fig. 2 B). To investigate the gene structure and conserved motifs of the TaYABBYs , we predicted exon-intron structures and ten conserved motifs using the MEME program and visualized them with TBtools (Fig. 2 C). Analysis of 21 TaYABBYs revealed that all subfamilies exhibited similar exon-intron architectures. Furthermore, the gene structures of members within the same subfamily were more similar to each other than to those of members from different subfamilies. Specifically, members of the FIL/YAB3 and CRC sub-families typically possessed seven exons and six introns, whereas those of the YAB2 sub-family generally had six exons and five introns. However, TaYABBY7D in the YAB2 family was an exception, featuring seven exons and six introns, which may be attributed to evolutionary changes.Analysis of conserved motifs revealed that motifs 1, 2, 3, and 6 were present in every member, indicating that they are likely specific to the YABBYs. Further investigation indicated that motif 1 forms the YABBY domain at the C-terminus, and motifs 2 and 3 constitute the C2-C2 domain at the N-terminus. The FIL/YAB3 sub-family was characterized by motif 9. Notably, motif 10 was present in both the YAB3 and YAB2 clades, whereas TaYABBY3A lacks motif 2. The INO sub-family possessed a unique set of motifs (motifs 1, 2, 3, 5, 6), while members of the YAB2 (TaYABBY7A, TaYABBY7B, and TaYABBY7D) and CRC sub-families shared the same set of motifs (motifs 1, 2, 3, 4, 6, 7). The prediction of functional motifs indicated that members of each subgroup shared the same conserved motifs, suggesting that they may have similar functions. Intraspecific and intermediate collinearity analysis of Intraspecific and intermediate collinearity analysis of TaYABBYs We utilized MCScanX within TBtools to examine tandem and fragment replication events in wheat (Figure S1 ). The findings indicated the presence of 24 pairs of fragment replication genes and 11 pairs of tandem replication genes within TaYABBYs . Additionally, it was observed that gene duplication events were more prevalent on chromosome 5 compared to the other chromosomes. To assess the evolutionary constraints on duplicated gene pairs, the Ka and Ks parameters were computed. All TaYABBYs homologous genes exhibited a Ka/Ks < 1, implying that they experienced strong purifying selection throughout their evolution (Table 2). Furthermore, to elucidate the evolutionary mechanism of TaYABBYs , comparative syntenic blocks were constructed among Arabidopsis, wheat, and rice (Fig. 3 ). We identified 19 syntenic orthologous gene pairs between wheat and rice, where multiple TaYABBYs were matched with a single OsYABBY . In contrast, none were found between wheat and Arabidopsis, likely due to their early evolutionary divergence as a dicot and a monocot, respectively, hindering the identification of collinear gene regions. Analysis of cis-acting elements in the promoter regions of Analysis of cis-acting elements in the promoter regions of TaYABBYs To uncover the potential functions of TaYABBYs , 2000 bp upstream sequences of 21 TaYABBYs transcription start sites were extracted from the wheat genome using TBtools and analyzed for cis -acting elements via the online PlantCARE database (Fig. 4 , Table S1 ). The predicted elements primarily relate to plant hormone, development, stress, and light responses. Notably, 18 seed-specific and 20 zein metabolism-regulatory elements, directly related to endosperm development, were detected. Additionally, 269 light-responsive, 253 plant hormone-responsive, and 73 stress-responsive elements were found, with light-responsive elements being prevalent in most YABBY promoters. These findings suggest that TaYABBYs may function in light and hormone responses, plant growth, development, and stress responses. Haplotype analysis of Haplotype analysis of TaYABBYs To further explore the genetic variation of TaYABBYs , haplotype analysis was performed on 21 TaYABBYs with genetic variation information using Lufei resequencing datas (Table 3). The results showed that the number of haplotypes of TaYABBYs was lower in cultivated varieties, but higher in landrace varieties and Spelt. Globally, the number of haplotypes of TaYABBYs was higher in Asia and Europe, while the number of haplotypes in Africa, North America, and South America was lower. Concurrently, we also analyzed the haplotypes of spring wheat and winter wheat. The results showed that the number of haplotypes of spring wheat and winter wheat was greater than that of facultative wheat. Notely, there was no genetic variation of TaYABBY1B/3A/2B/6A/8B/8D , indicating that these genes were relatively stable and had better adaptability to different environments. In contrast, genes such as TaYABBY5B/7A/6B/7B/7D/8A , exhibit relatively high haplotype variation, suggesting greater genetic diversity. These distributions provide insights into the genetic variation and adaptation of TaYABBYs in different wheat-related groups. Anaysis of TaYABBYs expression pattern based on RNA-seq To investigate the functions of TaYABBYs , we analyzed the spatiotemporal expression of 21 TaYABBYs in different tissues and during various stages of endosperm development (Fig. 5 A, Table S2). All genes exhibited low or negligible expression in roots and stems, but higher expression levels in spikes and endosperm. Genes within the same subfamily displayed both similarities and distinct differences in their expression patterns. During endosperm development, members of the YAB3/FIL and CRC subfamilies remained unexpressed. In contrast, TaYABBY2D from the INO subfamily, as well as TaYABBY6A/B/D and TaYABBY7A/B from the YAB2 subfamily, were expressed. TaYABBY6A/B/D and TaYABBY7A/B exhibited relatively high expression levels at 10 days post-pollination (10DPA) of endosperm development. TaYABBY2D and TaYABBY6B/D showed relatively higher expression levels at 20DPA, and only TaYABBY2D continued to be expressed at 30DPA. These findings suggest that TaYABBYs play a role in the process of reproductive growth, which aligns with the outcomes of promoter analysis. Based on TaYABBYs predictions regarding wheat grain development, the transcriptomes of TaYABBY during the grain-filling stage were sequenced for four wheat varieties: ‘Yaomai 36’, 'Pinyu 8175‘, 'Pinyu 8155’, and 'Yaomai’ 30 (Fig. 5 B and Table S3).The results indicated that the genes from the YAB2 and CRC subfamilies in all four varieties displayed higher expression at the milk ripe stage (MRS), moderate expression at the dough stage (DP), and lower expression at the wax ripe stage (WRS), with significant differences noted. In 'Yaomai 36', among the genes of the INO subfamily, only TaYABBY2D exhibited the highest expression level at the WRS stage; for genes of the YAB3/FIL subfamily, TaYABBY3B , TaYABBY3D , TaYABBY3A , TaYABBY8A , TaYABBY8B , and TaYABBY8D were highly expressed at the DP stage, whereas TaYABBY1A , TaYABBY1B , and TaYABBY1D were highly expressed at the MRS stage. In 'Pinyu 8175', the INO subfamily gene TaYABBY2D exhibited the lowest expression at the DP stage; among the YAB3/FIL subfamily genes, with the exception of TaYABBY1B , which was highly expressed at the MRS stage, the others were highly expressed at both the DP and WRS stages. In 'Pinyu 8155', the INO subfamily genes were highly expressed at the WRS stage and exhibited low expression at the MRS and DP stages; among the YAB3/FIL subfamily genes, only TaYABBY3D was highly expressed at the WRS stage. In 'Yaomai 30', the INO subfamily gene TaYABBY2D exhibited the highest expression level at the MRS stage; among the YAB3/FIL subfamily genes, TaYABBY3B , TaYABBY3D , and TaYABBY1B were highly expressed at the MRS stage, while TaYABBY8B and TaYABBY1D were highly expressed at the DP stage. The results indicate that the TaYABBYs exhibit clear spatiotemporal specificity during grain development, with their expression levels varying significantly across different developmental stages. We chose TaYABBY4A from the CRC family, which is closely associated with grain development, for functional validation of the TaYABBYs . Identification, subcellular localization, and transcriptional activity of Identification, subcellular localization, and transcriptional activity of TaYABBY4A To further validate the accuracy of transcriptome sequencing and verify the function of TaYABBYs , we conducted qRT-PCR detection of TaYABBY4A during the endosperm development of wheat grains. The results indicated that the expression trend was consistent with the RNA-seq data prediction, exhibiting a gradual decrease in expression levels across the three stages of grain development (Fig. 6 A). Subsequently, real-time fluorescent quantitative PCR was performed on the 10 obtained transgenic Arabidopsis lines overexpressing TaYABBY4A . The results (Fig. 6 B) indicated that the expression levels of OE1-OE10 were significantly higher than that of the WT, with OE3 and OE5 exhibiting the highest relative expression levels. Consequently, OE3 and OE5 were selected for further studies. The full-length cDNA of TaYABBY4A was cloned into the pGBKT7 vector, and its self-activation ability was verified through yeast experiments (Fig. 6 C). The negative control pGBKT7, positive control pGADT7-PtrWOX13A, and pGBKT7-TaYABBY4A all grew on SD/−Trp medium, confirming the accuracy of the experimental procedures and operations. pGBKT7-TaYABBY4A failed to form monoclonal colonies on SD/−Trp/−Ade/−His/X-α-gal medium, indicating that TaYABBY4A does not possess self-activation ability and may require the assistance of other proteins to function. Thus, it can be utilized as a bait to screen for interacting genes in the cDNA library, thereby further exploring the potential functions of TaYABBY proteins. Subcellular localization can reveal the specific cellular compartment in which the TaYABBY4A operates. The results (Fig. 6 D) indicated that the green fluorescence of the control protein 35S::GFP was observed in the nucleus, cytoplasm, and cell membrane. In contrast, the green fluorescence signal of the 35S::TaYABBY4A-GFP was detected solely in the nucleus, with the GFP fluorescence overlapping with DAPI fluorescence. This suggested that the TaYABBY4A was localized to the nucleus, aligning with the typical nuclear localization trait of most transcription factors. Phenotypic characterization of TaYABBY4A-overexpressing Arabidopsis thaliana Phenotypic observations were conducted on WT and overexpression lines throughout the growth stage. The results (Figs. 7 A-C) indicated that at 25 days, OE-3 and OE-5 exhibited retarded growth and produced fewer rosette leaves. By day 28, WT had entered the flowering stage, whereas OE-3 and OE-5 had not yet begun bolting. At 50 days, both the number of bolts and the plant height of OE-3 and OE-5 were lower than those of WT. Further statistical analysis of bolting and flowering time (Figs. 7 D and 7 E) revealed that, compared with the WT, both OE-3 and OE-5 exhibited a significant delay in bolting and flowering. The statistical data on the number rosette leaves indicated that OE-3 and OE-5 had significantly fewer than WT, decreased by 27.03% (OE-3) and 37.84% (OE-5), respectively (Figs. 7 F). The diameter of rosette leaves (Figs. 7 G) indicated OE-3 and OE-5 had significantly smaller than WT, decreased by 27.46% (OE-3) and 31.15% (OE-5), respectively. Phenotypic observations of the siliques from WT and overexpression lines indicated that the silique lengths of OE3 and OE5 were significantly shorter than WT, with reductions of 20.30% and 24.87%, respectively (Figs. 8 A and 8 B). Furthermore, the seed length and diameter of OE3 and OE5 were significantly shorter and narrower than WT. Specifically, the seed length decreased by 26.89% (OE3) and 31.09% (OE5), while the seed diameter decreased by 21.12% (OE3) and 29.58% (OE5) (Figs. 8 C and 8 D). These findings suggest that the TaYABBY4A may be involved in regulating plant growth and development. Discussion Genome-wide identification of YABBY gene family in wheat In the present study, 21 TaYABBYs were identified in wheat. There are more YABBY members in wheat than in rice [ 13 ], Arabidopsis[ 20 ], soybean[ 10 ], and tomato[ 21 ], indicating that TaYABBY has a more complex function. This reason is because wheat is a heterozygous polyploid. Phylogenetic analysis revealed that all TaYABBYs are classified into four clades: YAB3, YAB2, INO, and CRC. Among these clades, clade FIL/YAB3 contained the most of TaYABBYs, as what was reported in rice [ 9 ]. In comparison, TaYABBYs were divided into four clades, and no TaYABBY protein was found in clade YAB5, which might be lost in the interspecific differentiation process. This phenomenon is also found in Lactuca sativa , which loses clade YABBY2[ 22 ]. In addition, only four clades (CRC/DL, FIL, INO, and YAB2) were found in rice [ 13 ], the YAB5 clade does not exist in rice and other monocots[ 13 ], perhaps because YABBY has undergone functional differentiation during the process of plant evolution. Gene duplication events, particularly tandem duplication and fragment duplication, play an important role in the evolution and functional diversification of genomes. [ 22 , 26 , 29 ]. Wheat experienced multiple gene duplication events in its evolutionary history, including two significant allopolyploidization events. The first polyploidization event involved the combination of the A and B genomes to form tetraploid wheat[ 30 ]. The second polyploidization event occurred through hybridization between tetraploid wheat and a D genome donor to form hexaploid wheat[ 31 ]. Therefore, we analyzed the duplication patterns of the TaYABBYs . There are 21 pairs of fragment duplication genes in TaYABBYs that show collinearity. Our results indicate that fragment duplication is the main driving force for the expansion of the TaYABBYs during evolution, which is consistent with previous finding in maize [ 32 ]. The lack of synteny between wheat and Arabidopsis may be attributed to the fact that Arabidopsis is a dicotyledonous plant, whereas wheat is a monocotyledonous plant. The early divergence in their evolutionary history has led to significant differences in their genomic structure and sequence. This observation is consistent with the findings of previous studies[ 8 ]. The cis -acting elements play a crucial role in transcriptional regulation, mediating diverse mechanisms of growth and development[ 27 , 33 ]. Prior research has demonstrated that YABBYs are significantly involved in various biological processes [ 34 , 35 ]. In this study, a diverse array of plant regulatory cis -acting elements were identified within the promoter regions of TaYABBYs . Abscisic acid (ABA)-responsiveness and methyl jasmonate (MeJA)-responsiveness elements are critical for mediating plant responses to abiotic stress and disease resistance [ 29 , 35 ]. Additionally, these two types of elements are extensively involved in fruit development[ 24 ]. In wheat, ABA-responsive elements and MeJA-responsive elements are present in each TaYABBY (except for TaYABBY8A/B ), indicating that TaYABBYs can respond to various stresses and are involved in seed development. In addition, YABBYs canregulate the seed development [ 24 , 36 ]. In the present study, 18 seed-specific and 20 zein metabolism-regulatory elements were found, suggesting that it may have similar function. Haplotype analysis can reveal the genetic diversity of wheat and also help us identify signals of domestication and artificial selection [ 37 ]. In this study, the haplotype diversity of cultivated varieties was lower than that of landraces and spelt, indicating that these haplotypes may have been under strong selection during wheat domestication. Significant haplotype differences were observed among wheat varieties from different geographical regions, which may be related to local environmental adaptation, domestication history, and artificial selection. The haplotype diversity of spring, winter, and facultative wheat also showed significant differences, which may be associated with their mechanisms of response to temperature and photoperiod. These results indicate that haplotype analysis provides an important molecular basis for wheat genetic improvement. In this study, based on transcriptome data and qRT-PCR data, we conducted a comprehensive analysis of the expression profiles of TaYABBYs across different organs and three distinct endosperm developmental stages. In wheat, TaYABBY3 is one of the key genes in the FIL/YAB3 clade, and its high expression in the spike may be closely related to spike morphology and the development of floral organs[ 31 ]. Consistent with previous studies, the FIL/YAB3 clade demonstrates high expression levels in the spike. Previous studies have indicated that genes within the CRC clade are expressed in reproductive organs, including stigmas and ovules [ 38 ]. Notably, in our transcriptome dataset, genes belonging to the CRC clade exhibited elevated expression during the milking stage for each variety, whereas they were expressed at minimal levels or were absent entirely in public databases. This discrepancy may be attributed to the fact that the public databases utilized Chinese Spring as the reference material, whereas our study employed winter wheat. RNA sequencing results revealed variations in the expression levels of TaYABBYs throughout the grain-filling stage. These findings suggest that these genes may have direct or indirect impacts on the synthesis and accumulation of starch and protein within the grains [ 37 ]. Functional validation of TaYABBY4A overexpression in Arabidopsis thaliana YABBY play multiple roles in plant growth and development. In the CRC subfamily of rice, OsDL exhibits high expression in pistils [ 13 ]. Gossypium hirsutum GhYABBY6_Dt is primarily expressed specifically in pistils (carpels) and also shows high expression in cotyledons [ 39 ]. Most YABBY in Panicum virgatum, including PvYABBY13 , PvYABBY14 , PvYABBY15 , and PvYABBY16 , display relatively high expression levels in seeds and inflorescence tissues [ 40 ]. In this study, a combined analysis using public databases and transcriptome data from our laboratory revealed that TaYABBY4A is highly expressed in seeds and endosperm, indicating its significant role in the development of reproductive organs. Compared to the WT, overexpression of the TaYABBY4A in Arabidopsis thaliana resulted in delayed flowering, as well as a reduced number and diameter of rosette leaves. Previous studies have shown that overexpression of wheat TaYAB1 and soybean GmFILa in Arabidopsis thaliana also led to delayed flowering [ 41 , 42 ]. Overexpression of VvYABBY4 (a YAB2 member from Grapevine) in tomato caused plant dwarfing [ 14 ]. These results suggest that YABBY gene family is involved in plant growth and development. Overexpression of VvYABBY4 in tomato significantly reduced the size of fruits and seeds[ 14 ]. Overexpression of BpYAB2 , BpYAB3 , and BpYAB4 from Broussonetia papyrifera in Arabidopsis thaliana also resulted in shorter siliques and smaller seeds [ 43 ]. In this study, overexpression of TaYABBY4A reduced the length of siliques, as well as the length and diameter of seeds in Arabidopsis thaliana , further verifying its role in seed development. Conclusions This study systematically explored the YABBY gene family in wheat and successfully identified 21 TaYABBYs . These genes can be classified into five known subfamilies: FIL/YAB3, YAB2, CRC, INO, and YAB5. The researchers comprehensively analyzed the chromosomal localization, gene structure, evolutionary relationships, and expression patterns of these genes. During the polyploidization process, TaYABBYs underwent tandem duplication and gene loss events, accompanied by purifying selection. By integrating RNA-seq and qRT-PCR analysis data, we initially explored the specific expression profiles of TaYABBYs in grains. The overexpression of TaYABBY4A in Arabidopsis thaliana reduced the length of siliques and diameter of seeds. It confirmed that this gene played an important role in plant growth and development as well as grain endosperm development. The research results not only reveal the evolutionary characteristics of the YABBY gene family in wheat grains and lay a foundation for polyploid analysis, but also provide a theoretical basis for in-depth exploration of the functions of TaYABBYs in grains, as well as a scientific basis for further analysis of TaYABBYs . Material and methods Plant materials The Wheat Research Institute at Shanxi Agricultural University supplied the wheat varieties (Yaomai 36, Pinyu 8175, Pinyu 8155, and Yaomai 30 for the experiment. These varieties were planted at the Hancun Experimental Base of the Wheat Research Institute of Shanxi Agricultural University (36°13.2’ N, 111°33.7’ E) during the 2023–2024 growing season. Each variety occupied a plot measuring 36 meters in length and 10 meters in width. Wheat ears that blossomed simultaneously were tagged, and grains were harvested at three distinct phases of the grain-filling period: the milk-ripe stage (approximately 10 days post-flowering, MRS), the dough stage (approximately 20 days post-flowering, DP), and the wax-ripe stage (approximately 25 days post-flowering, WRS)[ 23 ]. The collected samples were promptly submerged in liquid nitrogen and preserved at -80℃ for subsequent RNA-Seq and qRT-PCR analyses. The wild-type Arabidopsis thaliana (Columbia-0, Col-0) was preserved by Professor Nie Xiaojun's laboratory at the state key laboratory for crop stress resistance and high-efficiency production at Northwest A&F University. In the greenhouse of the Wheat Research Institute at Shanxi Agricultural University, wild-type Arabidopsis thaliana and overexpression lines were planted in a mixture of black soil, vermiculite, and perlite. Initially, they were grown at 25°C under an 8-hour day/16-hour night photoperiod for 30 days. Subsequently, the growth continued at 25°C under a 16-hour day/8-hour night photoperiod until they reached 60 days. At the 30-day cultivation mark, rosette leaves from various overexpression lines were collected, immediately frozen in liquid nitrogen, and stored at -80°C to determine the expression level of TaYABBY4A . Identification of YABBYs Firstly, the genome information for Chinese Spring (IWGSC v2.1) was downloaded from the JGI website ( https://phytozome-next.jgi.doe.gov/ ) by searching for the target species within the Chinese Spring database[ 44 , 45 ]. The protein sequences for YABBY in Arabidopsis were obtained from the database TAIR10 ( https://www.arabidopsis.org/ )[ 44 ]. The YABBY domain (PF04690) was obtained and downloaded from PFAM ( https://pfam.xfam.org/ ) for the construction of a Hidden Markov Model (HMM)[ 46 ]. TaYABBYs were identified with an E-value < 0.01 by using HMMER3.0 [ 47 ]. Transcripts from Phytozome ( https://phytozome.jgi.doe.gov/pz/portal.html ) were filtered to retain only the primary ones[ 48 ]. TBtools[ 49 ] was utilized to extract TaYABBY sequences from the Chinese Spring database and to optimize the data. The fundamental physical and chemical properties, such as amino acid length (in base pairs), molecular weight (MW), and isoelectric point (pI), were analyzed using ExPASy-ProtParam ( https://web.expasy.org/protparam/ )[ 50 ]. Gene chromosomal locations were determined using Phytozome, and subcellular localization was predicted using Plant-mPLoc ( http://www.csbio.sjtu.edu.cn/bioinf/plant/ )[ 51 ]. Conserved domains, phylogenetic tree construction, and chromosomal location To analyze the evolutionary characteristics of TaYABBYs and their phylogenetic relationships among Arabidopsis, rice, and wheat, we conducted a series of bioinformatics analyses. First, multiple sequence alignments of TaYABBYs were performed using MEGA [ 64 ], and the results were visualized with Jalview 2.11.3.2[ 52 ] to identify conserved regions. Second, YABBY sequences of Oryza sativa and Arabidopsis thaliana were obtained from PlantTFDB ( http://planttfdb.gao-lab.org/index.php )[ 53 ], and a phylogenetic tree was constructed via the Neighbor-Joining (NJ) method in ClustalW program with a 1000-replication bootstrap value [ 54 ], then visualized and classified on iTOL ( https://itol.embl.de )[ 55 ]. Finally, TBtools was utilized to visualize the chromosomal localization of TaYABBYs , facilitating an understanding of their genomic organization. Gene structure and conserved motif prediction The gene structures of TaYABBYs were analyzed using the GFF annotation file obtained from the wheat Genome Database. Motifs of the TaYABBYs were identified using MEME’s online tools ( http://meme-suite.org/tools/meme/ ). The number of motifs was set to 10. The structure view was drawn using TBtools.[ 56 ]. Collinearity analysis Collinearity analysis of TaYABBYs was conducted, and a Circos diagram was generated using the Multiple Collinear Scan Toolkit X (MCScanX) plugin in TBtools[ 57 ]. The CDS of TaYABBYs were aligned using the BLAST online website( https://blast.ncbi.nlm.nih.gov/Blast.cgi)i n NCBI[ 58 ]. The Ka/Ks Calculator in TBtools computed Ka, Ks, and Ka/Ks ratios for pairs, proteins, and CDS of YABBYs [ 59 ]. BLAST was used to analyze gene-pair homology. The collinearity among wheat, rice, and Arabidopsis was analyzed and visualized using the Multiple Synteny Plot plug-in of TBtools. Analysis of cis-acting elements in promoter regions TBtools software was utilized to obtain the 2000 bp sequence upstream of the CDS of TaYABBYs . This sequence was then submitted to Plant-Care ( https://bioinformatics.psb.ugent.be/webtools/plantcare/html/ ) for the prediction of promoter cis -acting elements[ 60 ]. Data processing was conducted using Excel, and visualization was performed with TBtools. Haplotype analysis Based on the whole-genome resequencing data of wheat from LuFei[ 61 ], SNPs of TaYABBYs were extracted in accordance with the chromosomal positions of the genes. The re-sequenced wheat materials were categorized into various haplotypes based on the SNP differences. Gene expression pattern analysis of wheat To investigate the expression patterns of TaYABBYs , transcriptome data from various tissues and endosperm development stages were obtained from the publicly accessible Triticum aestivum transcriptome database ( http://ipf.sustech.edu.cn/pub/wheatrna/ ). Concurrently, grains from four different varieties at the grain-filling stage were submitted to Beijing Tsingke Biotech Co.,Ltd for transcriptome sequencing. The expression patterns of TaYABBYs were then visualized on a heatmap using TBtools[ 62 , 63 ]. cDNA synthesis and quantitative real-time PCR In gene expression analysis, RNA samples obtained from transcriptome sequencing were used to verify the accuracy of the transcriptome data. For the analysis of expression levels in overexpression lines, total RNA was extracted from previously collected rosette leaf samples using the Plant Total RNA Extraction Kit (TSINGKE TSP0201). Subsequently, cDNA was synthesized using the TaKaRa reverse transcription kit. Using TaActin as the internal reference gene and SYBR Green I as the fluorescent dye, the expression levels in four wheat varieties and ten transgenic lines were quantitatively detected on the Applied Biosystems 7500 Real-Time PCR System (Thermo, Waltham, Massachusetts, USA). All reactions were set up with three technical replicates. The quantitative PCR primers were designed using Primer 5 software, and the specific sequences are detailed in Table S4. The relative gene expression levels were calculated using the 2 ⁻∆∆CT method[ 64 ]. Vector construction and plant transformation The full-length coding sequence of TaYABBY4A was cloned into the pROKII vector, which contains the CaMV35S promoter. The resulting recombinant plasmid was introduced into the Agrobacterium tumefaciens strain EHA105 and subsequently used to transform Arabidopsis thaliana (Col-0) via the floral dip method.[ 65 ]. The transgenic Arabidopsis lines were selected on 1/2 MS medium supplemented with Kanamycin (Phyto Tech, K378, USA, 50 mg/L). Subcellular localization and transcriptional auto-activation assay The CDS sequences of TaYABBY4A , with their stop codons removed, were cloned using KOD FX Neo (TOYOBO, KFX-201, Japan). The TaYABBY4A was then integrated into the N-terminal GFP of the pFGC-eGFP vectors using the Trelief TM SoSoo Cloning Kit Ver.2 (Tsingke, TSV-S3, Beijing, China). A single restriction site, BamH I, was used to construct the vector, and the primers are listed in Table S4. The fusion constructs were introduced into onion epidermal cells via particle bombardment (GJ-1000). Subsequently, these constructs were observed under a confocal laser scanning microscope (Zeiss LSM 800, Wetzlar, Germany). The transcriptional activation activity of TaYABBY4A was confirmed using the yeast two-hybrid system. Initially, the CDS of TaYABBY4A was amplified (Table S4) to construct the recombinant vector pGBKT7-TaYABBY4A. The pGBKT7-TaYABBY4A, along with the positive control pGBKT7-PtrWOX13A and the negative control, the empty pGBKT7 vector, were individually transformed into Y2H-Gold yeast cells. The transformed Y2H-Gold yeast cells were then plated onto SD/-Trp (growth control), SD/-Trp/-His/-Ade, and X-α-gal media and cultured at 30°C for 3–5 days to assess their transcriptional activation activity[ 66 ]. Phenotypic characterization of overexpression lines The bolting and flowering times of WT, OE3, and OE5 plants grown for 25, 28, and 50 days were recorded. Furthermore, a ruler was utilized to measure the diameter of the rosette leaves. Siliques and seeds from Arabidopsis were randomly chosen, and their lengths, along with the diameter of the seeds, were measured using ImageJ 1.53[ 67 ]. Statistical analysis The experimental data were analyzed using Microsoft Excel 2021 and SPSS 22.0. Significant differences among the various comparisons were determined using Duncan's multiple range test and visualized with GraphPad Prism 10. Declarations Ethics approval and consent to participate Not applicable. Consent for publication Not applicable. Availability of Data and Materials The genomics information for Chinese Spring wheat (IWGSC v2.1) was obtained from the Joint Genome Institute's website (https://phytozome-next.jgi.doe.gov/). The protein sequences of YABBY in rice and Arabidopsis were retrieved from the Plant Transcription Factor Database (http://planttfdb.gao-lab.org/index.php). The haplotypes of TaYABBYs were extracted based on the chromosomal positions of the genes, using whole-genome re-sequencing data of wheat from Lufei (http://wheat.cau.edu.cn/WheatUnion/b_4/). FPKM values from various wheat organizations were downloaded from the database website (http://ipf.sustech.edu.cn/pub/wheatrna/). Data is provided within the manuscript or in supplementary information files. Competing Interests The authors declare that they have no competing interests. Funding This work were supported by the Major Project on Agricultural Bio-breeding of China (2023ZD04026) and Open Project Program of State Key Laboratory for Crop Stress Resistance and High-Efficiency Production (SKLCSRHPKF2025016) as well as China Agriculture Research System (Wheat, CARS-03-54) and the Project of Science and Technology Innovation Fund of Shanxi Agricultural University (2023BQ40). Author’s Contributions Y.J. and X.L. performed the formal data collection and analyses, as well as preparing the original draft of the manuscript. X.M., R.G. participated in the RNA-seq analysis and qRT-PCR analysis. H.J., Y.Z., and X.N. conceived and designed the study, Y.Z., and X.N. obtained funds, and critically reviewed the final draft of the manuscript. All authors have read and agreed to the published version of the manuscript. References Tanaka W, Toriba T, Hirano HY: Three TOB1-related YABBY genes are required to maintain proper function of the spikelet and branch meristems in rice . New Phytol 2017, 215 (2):825-839. Bowman JL, Smyth DR: CRABS CLAW, a gene that regulates carpel and nectary development in Arabidopsis, encodes a novel protein with zinc finger and helix-loop-helix domains . Development 1999, 126 (11):2387-2396. Goldshmidt A, Alvarez JP, Bowman JL, Eshed Y: Signals derived from YABBY gene activities in organ primordia regulate growth and partitioning of Arabidopsis shoot apical meristems . Plant Cell 2008, 20 (5):1217-1230. Stahle MI, Kuehlich J, Staron L, von Arnim AG, Golz JF: YABBYs and the transcriptional corepressors LEUNIG and LEUNIG_HOMOLOG maintain leaf polarity and meristem activity in Arabidopsis . Plant Cell 2009, 21 (10):3105-3118. Shinichiro Sawa TI, Yoshiro Shimura, and Kiyotaka Okada: FILAMENTOUS FLOWER Controls the Formation and Development of Arabidopsis Inflorescences and Floral Meristems . The Plant Cell 1999, 11 :69-86. Han K, Lai M, Zhao T, Yang X, An X, Chen Z: Plant YABBY transcription factors: a review of gene expression, biological functions, and prospects . Critical Reviews in Biotechnology 2024:1-22. Guan J, Wang Z, Liu S, Kong X, Wang F, Sun G, Geng S, Mao L, Zhou P, Li A: Transcriptome Analysis of Developing Wheat Grains at Rapid Expanding Phase Reveals Dynamic Gene Expression Patterns . Biology 2022, 11 (2):281. Hao L, Zhang J, Shi S, Li P, Li D, Zhang T, Guo H: Identification and expression profiles of the YABBY transcription factors in wheat . PeerJ 2022, 10 :e12855. Toriba T, Harada K, Takamura A, Nakamura H, Ichikawa H, Suzaki T, Hirano HY: Molecular characterization the YABBY gene family in Oryza sativa and expression analysis of OsYABBY1 . Mol Genet Genomics 2007, 277 (5):457-468. Zhao SP, Lu D, Yu TF, Ji YJ, Zheng WJ, Zhang SX, Chai SC, Chen ZY, Cui XY: Genome-wide analysis of the YABBY family in soybean and functional identification of GmYABBY10 involvement in high salt and drought stresses . Plant physiology and biochemistry : PPB 2017, 119 :132-146. Zhang S, Wang L, Sun X, Li Y, Yao J, Nocker SV, Wang X: Genome-Wide Analysis of the YABBY Gene Family in Grapevine and Functional Characterization of VvYABBY4 . Frontiers in Plant Science 2019, 10 . Huang Z, Van Houten J, Gonzalez G, Xiao H, van der Knaap E: Genome-wide identification, phylogeny and expression analysis of SUN, OFP and YABBY gene family in tomato . Mol Genet Genomics 2013, 288 (3-4):111-129. Zhang T, Wu A, Hu X, Deng Q, Ma Z, Su L: Comprehensive study of rice YABBY gene family: evolution, expression and interacting proteins analysis . PeerJ 2023, 11 :e14783. Zhang S, Wang L, Sun X, Li Y, Yao J, van Nocker S, Wang X: Genome-Wide Analysis of the YABBY Gene Family in Grapevine and Functional Characterization of VvYABBY4 . Front Plant Sci 2019, 10 :1207. Orashakova S, Lange M, Lange S, Wege S, Becker A: The CRABS CLAW ortholog from California poppy (Eschscholzia californica, Papaveraceae), EcCRC, is involved in floral meristem termination, gynoecium differentiation and ovule initiation . Plant J 2009, 58 (4):682-693. Yang Z, Gong Q, Wang L, Jin Y, Xi J, Li Z, Qin W, Yang Z, Lu L, Chen Q et al : Genome-Wide Study of YABBY Genes in Upland Cotton and Their Expression Patterns under Different Stresses . Front Genet 2018, 9 :33. Guo J, Zhou X-t, Dai K-l, Yuan X-y, Guo P-y, Shi W-p, Zhou M-x: Comprehensive analysis of YABBY gene family in foxtail millet (Setaria italica) and functional characterization of SiDL . Journal of Integrative Agriculture 2022, 21 (10):2876-2887. Zhang T, Li C, Li D, Liu Y, Yang X: Roles of YABBY transcription factors in the modulation of morphogenesis, development, and phytohormone and stress responses in plants . Journal of Plant Research 2020, 133 (6):751-763. Juliana P, Poland J, Huerta-Espino J, Shrestha S, Crossa J, Crespo-Herrera L, Toledo FH, Govindan V, Mondal S, Kumar U et al : Improving grain yield, stress resilience and quality of bread wheat using large-scale genomics . Nature Genetics 2019, 51 (10):1530-1539. Hussain M, Javed MM, Sami A, Shafiq M, Ali Q, Mazhar HS, Tabassum J, Javed MA, Haider MZ, Hussain M et al : Genome-wide analysis of plant specific YABBY transcription factor gene family in carrot (Dacus carota) and its comparison with Arabidopsis . BMC Genom Data 2024, 25 (1):26. Yang T, He Y, Niu S, Zhang Y: A YABBY gene CRABS CLAW a (CRCa) negatively regulates flower and fruit sizes in tomato . Plant science : an international journal of experimental plant biology 2022, 320 :111285. Luo K, Zhang D, Zhai Z, Liu X, Zhou J, Zhang B, Li D: Genome-Wide Analysis of YABBY Gene Family in Lettuce (Lactuca sativa) and Functional Characterization of LsaFILd . Journal of Plant Growth Regulation 2023, 42 (4):2124-2135. Zhang Y, Xu Y, Mao Y, Tan X, Tian Y, Ma X, Ji H, Zhang D: Genome-Wide Identification and Expression Analysis of NF-YA Gene Family in the Filling Stage of Wheat (Triticum aestivum L.) . International Journal of Molecular Sciences 2024, 26 :133. Li C, Dong N, Shen L, Lu M, Zhai J, Zhao Y, Chen L, Wan Z, Liu Z, Ren H et al : Genome-wide identification and expression profile of YABBY genes in Averrhoa carambola . PeerJ 2022, 9 :e12558. Zhao S-P, Lu D, Yu T-F, Ji Y-J, Zheng W-J, Zhang S-X, Chai S-C, Chen Z-Y, Cui X-Y: Genome-wide analysis of the YABBY family in soybean and functional identification of GmYABBY10 involvement in high salt and drought stresses . Plant Physiology and Biochemistry 2017, 119 :132-146. Yin S, Li S, Gao Y, Bartholomew ES, Wang R, Yang H, Liu C, Chen X, Wang Y, Liu X et al : Genome-Wide Identification of YABBY Gene Family in Cucurbitaceae and Expression Analysis in Cucumber (Cucumis sativus L.) . Genes (Basel) 2022, 13 (3). Wang W, Ma J, Liu H, Wang Z, Nan R, Zhong T, Sun M, Wang S, Yao Y, Sun F et al : Genome-wide analysis of the switchgrass YABBY family and functional characterization of PvYABBY14 in response to ABA and GA stress in Arabidopsis . BMC Plant Biology 2024, 24 (1):114. Bowman JL, Smyth DR, Meyerowitz EM: Genes directing flower development in Arabidopsis . Plant Cell 1989, 1 (1):37-52. Liu H, Ye H, Wang J, Chen S, Li M, Wang G, Hou N, Zhao P: Genome-Wide Identification and Characterization of YABBY Gene Family in Juglans regia and Juglans mandshurica . 2022, 12 (8):1914. Appels R, Eversole K, Stein N, Feuillet C, Keller B, Rogers J, Pozniak CJ, Choulet F, Distelfeld A, Poland J et al : Shifting the limits in wheat research and breeding using a fully annotated reference genome . Science 2018, 361 (6403):eaar7191. Jiao C, Xie X, Hao C, Chen L, Xie Y, Garg V, Zhao L, Wang Z, Zhang Y, Li T et al : Pan-genome bridges wheat structural variations with habitat and breeding . Nature 2025, 637 (8045):384-393. Zhang Z, Qu J, Li F, Li S, Xu S, Zhang R, Xue J, Guo D: Genome-wide evolutionary characterization and expression analysis of SIAMESE-RELATED family genes in maize . BMC Evolutionary Biology 2020, 20 (1):91. Zheng Q, Zhao X, Huang Y, Zhang MM, He X, Ke S, Li Y, Zhang C, Ahmad S, Lan S et al : Genome-Wide Identification of the YABBY Gene Family in Dendrobium Orchids and Its Expression Patterns in Dendrobium chrysotoxum . Int J Mol Sci 2023, 24 (12). Bowman JL: The YABBY gene family and abaxial cell fate . Current opinion in plant biology 2000, 3 (1):17-22. Zhao Y, Liu C, Ge D, Yan M, Ren Y, Huang X, Yuan Z: Genome-wide identification and expression of YABBY genes family during flower development in Punica granatum L . Gene 2020, 752 :144784. Finet C, Floyd SK, Conway SJ, Zhong B, Scutt CP, Bowman JL: Evolution of the YABBY gene family in seed plants . Evolution & Development 2016, 18 (2):116-126. Rabieyan E, Darvishzadeh R, Mohammadi R, Gul A, Rasheed A, Akhar FK, Abdi H, Alipour H: Genetic diversity, linkage disequilibrium, and population structure of tetraploid wheat landraces originating from Europe and Asia . BMC genomics 2023, 24 (1):682. Siegfried KR, Eshed Y, Baum SF, Otsuga D, Drews GN, Bowman JL: Members of the YABBY gene family specify abaxial cell fate in Arabidopsis . Development 1999, 126 (18):4117-4128. Zhang X, Chen J, Yan Y, Yan X, Shi C, Zhao L, Chen F: Genome-wide association study of heading and flowering dates and construction of its prediction equation in Chinese common wheat . Theor Appl Genet 2018, 131 (11):2271-2285. Wang W, Ma J, Liu H, Wang Z, Nan R, Zhong T, Sun M, Wang S, Yao Y, Sun F et al : Genome-wide analysis of the switchgrass YABBY family and functional characterization of PvYABBY14 in response to ABA and GA stress in Arabidopsis . BMC Plant Biol 2024, 24 (1):114. Zhao W, Su HY, Song J, Zhao XY, Zhang XS: Ectopic expression of TaYAB1, a member of YABBY gene family in wheat, causes the partial abaxialization of the adaxial epidermises of leaves and arrests the development of shoot apical meristem in Arabidopsis . Plant Science 2006, 170 (2):364-371. Yang H, Shi G, Li X, Hu D, Cui Y, Hou J, Yu D, Huang F: Overexpression of a soybean YABBY gene, GmFILa, causes leaf curling in Arabidopsis thaliana . BMC Plant Biology 2019, 19 (1):234. Tang F, Zhang D, Chen N, Peng X, Shen S: Genome-Wide Analysis of BpYABs and Function Identification Involving in the Leaf and Silique Development in Transgenic Arabidopsis . Int J Mol Sci 2022, 23 (3). Lamesch P, Berardini TZ, Li D, Swarbreck D, Wilks C, Sasidharan R, Muller R, Dreher K, Alexander DL, Garcia-Hernandez M et al : The Arabidopsis Information Resource (TAIR): improved gene annotation and new tools . Nucleic Acids Research 2011, 40 (D1):D1202-D1210. Li S, Zhang C, Li J, Yan L, Wang N, Xia L: Present and future prospects for wheat improvement through genome editing and advanced technologies . Plant Communications 2021, 2 (4). Finn RD, Mistry J, Schuster-Böckler B, Griffiths-Jones S, Hollich V, Lassmann T, Moxon S, Marshall M, Khanna A, Durbin R et al : Pfam: clans, web tools and services . Nucleic Acids Research 2006, 34 (suppl_1):D247-D251. Finn RD, Clements J, Eddy SR: HMMER web server: interactive sequence similarity searching . Nucleic Acids Research 2011, 39 (suppl_2):W29-W37. Goodstein DM, Shu S, Howson R, Neupane R, Hayes RD, Fazo J, Mitros T, Dirks W, Hellsten U, Putnam N et al : Phytozome: a comparative platform for green plant genomics . Nucleic Acids Res 2012, 40 (Database issue):D1178-1186. Chen C, Chen H, Zhang Y, Thomas HR, Frank MH, He Y, Xia R: TBtools: An Integrative Toolkit Developed for Interactive Analyses of Big Biological Data . Molecular Plant 2020, 13 (8):1194-1202. Gasteiger E, Gattiker A, Hoogland C, Ivanyi I, Appel RD, Bairoch A: ExPASy: The proteomics server for in-depth protein knowledge and analysis . Nucleic Acids Res 2003, 31 (13):3784-3788. Chou KC, Shen HB: Plant-mPLoc: a top-down strategy to augment the power for predicting plant protein subcellular localization . PLoS One 2010, 5 (6):e11335. Waterhouse AM, Procter JB, Martin DMA, Clamp M, Barton GJ: Jalview Version 2—a multiple sequence alignment editor and analysis workbench . Bioinformatics 2009, 25 (9):1189-1191. Guo A-Y, Chen X, Gao G, Zhang H, Zhu Q-H, Liu X-C, Zhong Y-F, Gu X, He K, Luo J: PlantTFDB: a comprehensive plant transcription factor database . Nucleic Acids Research 2007, 36 (suppl_1):D966-D969. Hall BG: Building Phylogenetic Trees from Molecular Data with MEGA . Molecular Biology and Evolution 2013, 30 (5):1229-1235. Letunic I, Bork P: Interactive Tree Of Life (iTOL) v5: an online tool for phylogenetic tree display and annotation . Nucleic Acids Research 2021, 49 (W1):W293-W296. Bailey TL, Johnson J, Grant CE, Noble WS: The MEME Suite . Nucleic Acids Research 2015, 43 (W1):W39-W49. Wang Y, Tang H, DeBarry JD, Tan X, Li J, Wang X, Lee T-h, Jin H, Marler B, Guo H et al : MCScanX: a toolkit for detection and evolutionary analysis of gene synteny and collinearity . Nucleic Acids Research 2012, 40 (7):e49-e49. Altschul SF, Gish W, Miller W, Myers EW, Lipman DJ: Basic local alignment search tool . Journal of molecular biology 1990, 215 (3):403-410. Zhang Z, Li J, Zhao XQ, Wang J, Wong GK, Yu J: KaKs_Calculator: calculating Ka and Ks through model selection and model averaging . Genomics, proteomics & bioinformatics 2006, 4 (4):259-263. Lescot M, Déhais P, Thijs G, Marchal K, Moreau Y, Van de Peer Y, Rouzé P, Rombauts S: PlantCARE, a database of plant cis-acting regulatory elements and a portal to tools for in silico analysis of promoter sequences . Nucleic Acids Research 2002, 30 (1):325-327. Zhou Y, Zhao X, Li Y, Xu J, Bi A, Kang L, Xu D, Chen H, Wang Y, Wang Y-g et al : Triticum population sequencing provides insights into wheat adaptation . Nature Genetics 2020, 52 (12):1412-1422. Levy AA, Feldman M: Evolution and origin of bread wheat . The Plant Cell 2022, 34 (7):2549-2567. Yang J, Zhang B, Gu G, Yuan J, Shen S, Jin L, Lin Z, Lin J, Xie X: Genome-wide identification and expression analysis of the R2R3-MYB gene family in tobacco (Nicotiana tabacum L.) . BMC genomics 2022, 23 (1):432. Livak KJ, Schmittgen TD: Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2−ΔΔCT Method . Methods 2001, 25 (4):402-408. Clough SJ, Bent AF: Floral dip: a simplified method for Agrobacterium -mediated transformation of Arabidopsis thaliana . The Plant Journal 1998, 16 (6):735-743. Zhang Y, Liu Y, Wang X, Wang R, Chen X, Wang S, Wei H, Wei Z: PtrWOX13A Promotes Wood Formation and Bioactive Gibberellins Biosynthesis in Populus trichocarpa . Front Plant Sci 2022, 13 :835035. Rueden CT, Schindelin J, Hiner MC, DeZonia BE, Walter AE, Arena ET, Eliceiri KW: ImageJ2: ImageJ for the next generation of scientific image data . BMC Bioinformatics 2017, 18 (1):529. Tables Tables 1 to 3 are available in the Supplementary Files section. Additional Declarations No competing interests reported. Supplementary Files Table1.xlsx Table 1 Characteristics of YABBY gene family in wheat. Table2.xlsx Table 2 Ka/Ks ratio and homology of homologous genes Table3.xlsx Table 3 Haplotype number of TaYABBYs SupplementaryMaterials.zip Cite Share Download PDF Status: Published Journal Publication published 30 Dec, 2025 Read the published version in BMC Plant Biology → Version 1 posted Editorial decision: Revision requested 03 Nov, 2025 Reviews received at journal 23 Oct, 2025 Reviews received at journal 23 Oct, 2025 Reviews received at journal 17 Oct, 2025 Reviewers agreed at journal 08 Oct, 2025 Reviewers agreed at journal 05 Oct, 2025 Reviewers agreed at journal 03 Oct, 2025 Reviewers agreed at journal 03 Oct, 2025 Reviewers invited by journal 03 Oct, 2025 Editor invited by journal 30 Sep, 2025 Editor assigned by journal 29 Sep, 2025 Submission checks completed at journal 29 Sep, 2025 First submitted to journal 23 Sep, 2025 You are reading this latest preprint version Research Square lets you share your work early, gain feedback from the community, and start making changes to your manuscript prior to peer review in a journal. As a division of Research Square Company, we’re committed to making research communication faster, fairer, and more useful. We do this by developing innovative software and high quality services for the global research community. Our growing team is made up of researchers and industry professionals working together to solve the most critical problems facing scientific publishing. Also discoverable on Platform About Our Team In Review Editorial Policies Advisory Board Help Center Resources Author Services Accessibility API Access RSS feed Manage Cookie Preferences © Research Square 2026 | ISSN 2693-5015 (online) Privacy Policy Terms of Service Do Not Sell My Personal Information {"props":{"pageProps":{"initialData":{"identity":"rs-7691254","acceptedTermsAndConditions":true,"allowDirectSubmit":false,"archivedVersions":[],"articleType":"Research Article","associatedPublications":[],"authors":[{"id":526809906,"identity":"c2fb9c5c-4fdb-4cf9-adc7-cec22df887b5","order_by":0,"name":"Yuwei Jia","email":"","orcid":"","institution":"North West Agriculture and Forestry University","correspondingAuthor":false,"prefix":"","firstName":"Yuwei","middleName":"","lastName":"Jia","suffix":""},{"id":526809907,"identity":"99d5d546-db8d-4e9a-847e-8b1945ae40d7","order_by":1,"name":"Xinyu Liu","email":"","orcid":"","institution":"Shanxi Agricultural University","correspondingAuthor":false,"prefix":"","firstName":"Xinyu","middleName":"","lastName":"Liu","suffix":""},{"id":526809908,"identity":"a8eb7771-6de4-4ec0-bb10-4a455fd46a40","order_by":2,"name":"Rongdi Guo","email":"","orcid":"","institution":"North West Agriculture and Forestry University","correspondingAuthor":false,"prefix":"","firstName":"Rongdi","middleName":"","lastName":"Guo","suffix":""},{"id":526809909,"identity":"2fb51b20-4318-49ec-9240-b93ae6860730","order_by":3,"name":"Xiaofei Ma","email":"","orcid":"","institution":"Shanxi Agricultural University","correspondingAuthor":false,"prefix":"","firstName":"Xiaofei","middleName":"","lastName":"Ma","suffix":""},{"id":526809910,"identity":"82e8f174-58b3-4293-b725-d6e510a0e5b4","order_by":4,"name":"Hutai Ji","email":"","orcid":"","institution":"Shanxi Agricultural University","correspondingAuthor":false,"prefix":"","firstName":"Hutai","middleName":"","lastName":"Ji","suffix":""},{"id":526809911,"identity":"6493f8bf-0b31-4181-8464-822f515038e7","order_by":5,"name":"Yang Zhang","email":"data:image/png;base64,iVBORw0KGgoAAAANSUhEUgAAAZAAAAAyAQMAAABI0h/eAAAABlBMVEX///8AAABVwtN+AAAACXBIWXMAAA7EAAAOxAGVKw4bAAAA8klEQVRIiWNgGAWjYLACxgYgwd7YcOCDgY0dCVp4Djc+nFGQlkyCFgn3ZmOeD4fAbLzA4PjZwy9/7rDLk49gbJO2MTjAzMB++OgGvFrO5KVZSJ5JLja83dgmnWNwh4+BJy3tBl4tB3LMDAzbmBM3zjkI0vKMmUGCxwy/lvNvzAwS2+oTN85IbJO2MDjM2EBQy40c4wcH2w4nzpdIbDZmIEaL5I03ZoyNbccTN/AcbHzYY5CWzEbIL3znc4w//myrTpzf3v7gwI8/Nnb87IeP4dWicICBTQLswgNQETZ8ykFAvoGB+QOUMQpGwSgYBaMAOwAA7DxWHXiyPKcAAAAASUVORK5CYII=","orcid":"","institution":"Shanxi Agricultural University","correspondingAuthor":true,"prefix":"","firstName":"Yang","middleName":"","lastName":"Zhang","suffix":""},{"id":526809912,"identity":"6bc9caea-0dc2-400b-a4ff-ccd054b71a91","order_by":6,"name":"Xiaojun Nie","email":"","orcid":"","institution":"North West Agriculture and Forestry University","correspondingAuthor":false,"prefix":"","firstName":"Xiaojun","middleName":"","lastName":"Nie","suffix":""}],"badges":[],"createdAt":"2025-09-23 07:53:20","currentVersionCode":1,"declarations":"","doi":"10.21203/rs.3.rs-7691254/v1","doiUrl":"https://doi.org/10.21203/rs.3.rs-7691254/v1","draftVersion":[],"editorialEvents":[{"content":"https://doi.org/10.1186/s12870-025-07920-w","type":"published","date":"2025-12-30T15:58:19+00:00"}],"editorialNote":"","failedWorkflow":false,"files":[{"id":93677900,"identity":"6337823d-bee1-4448-a623-21bbe33ec1d9","added_by":"auto","created_at":"2025-10-16 11:28:19","extension":"jpg","order_by":0,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":3729881,"visible":true,"origin":"","legend":"","description":"","filename":"Figure1.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8b157dc4d807772014380a06.jpg"},{"id":93676631,"identity":"cff7bd59-0f57-4647-aa30-7b42ab4cd0ce","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"docx","order_by":1,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":145262,"visible":true,"origin":"","legend":"","description":"","filename":"Manuscript9.26.docx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/56b4cfe486ebb003defe2fcd.docx"},{"id":93677897,"identity":"47e7cf14-1236-4c35-82ec-a9b56d46474b","added_by":"auto","created_at":"2025-10-16 11:28:19","extension":"jpg","order_by":2,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1638890,"visible":true,"origin":"","legend":"","description":"","filename":"Figure2.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/a85f563f4df1392215a1ebf3.jpg"},{"id":93677896,"identity":"2ef4d8a6-0e2d-4374-b366-6aa1c1eb2064","added_by":"auto","created_at":"2025-10-16 11:28:19","extension":"jpg","order_by":3,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1880878,"visible":true,"origin":"","legend":"","description":"","filename":"Figure3.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/cd14db9e76fce365e0f6d5e0.jpg"},{"id":93676637,"identity":"2362ff61-6b4e-4c2d-9d3e-c3b99c123f24","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"xlsx","order_by":4,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":11630,"visible":true,"origin":"","legend":"","description":"","filename":"Table1.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/03bd3c86455e3da937e225b1.xlsx"},{"id":93676868,"identity":"7abed77b-6565-40f3-87c7-8814e8a8f425","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"jpg","order_by":5,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1106833,"visible":true,"origin":"","legend":"","description":"","filename":"Figure4.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/d9a7b848b67698884a17ef90.jpg"},{"id":93676865,"identity":"e9b6d6f6-5368-4864-91bc-42aeb7f85aa5","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"xlsx","order_by":6,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":10656,"visible":true,"origin":"","legend":"","description":"","filename":"Table2.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/4365fe7f9223b8b388caad59.xlsx"},{"id":93676648,"identity":"cfa83a93-92f1-4692-becf-ff4cd45c6fb7","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"jpg","order_by":7,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1907973,"visible":true,"origin":"","legend":"","description":"","filename":"Figure5.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/99c61272174350d00d608466.jpg"},{"id":93677899,"identity":"2543c4f3-220c-403e-92b3-7cebc31e39c0","added_by":"auto","created_at":"2025-10-16 11:28:19","extension":"xlsx","order_by":8,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":10480,"visible":true,"origin":"","legend":"","description":"","filename":"Table3.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/c921812bdbdb3a51a8ab31cc.xlsx"},{"id":93676869,"identity":"cfb76a64-1795-474f-a53e-ebf86f3fa3a3","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"jpg","order_by":9,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1361176,"visible":true,"origin":"","legend":"","description":"","filename":"Figure6.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/dcb1e72b1e8e8d74d4c731d9.jpg"},{"id":93676873,"identity":"d7902650-4192-45ac-b05c-895a3adc5885","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"jpg","order_by":10,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1356656,"visible":true,"origin":"","legend":"","description":"","filename":"Figure7.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/02f2cc59dc0c6b49b4ca716e.jpg"},{"id":93676871,"identity":"929e4ae1-33b8-4155-ace4-cd2d01558fba","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"jpg","order_by":11,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1089543,"visible":true,"origin":"","legend":"","description":"","filename":"Figure8.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/53c372e5b426420b9fb6c54d.jpg"},{"id":93676641,"identity":"c7ea8146-8b9c-4f8e-a3b3-83e9db8df6a8","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"json","order_by":12,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":8695,"visible":true,"origin":"","legend":"","description":"","filename":"9fc79beccec7453785e2cc247b4e4d47.json","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/145e9a5c32a2e9e4ed84300c.json"},{"id":93676655,"identity":"3b8f282e-34dc-4ad0-914d-ed1d24797208","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"zip","order_by":13,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":286284,"visible":true,"origin":"","legend":"","description":"","filename":"SupplementaryMaterials.zip","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/a476199e50352ba7bbd5ffef.zip"},{"id":93676658,"identity":"dcb41ff3-56e2-42dc-9afa-ccf4e3dad077","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"xml","order_by":14,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":178364,"visible":true,"origin":"","legend":"","description":"","filename":"9fc79beccec7453785e2cc247b4e4d471enriched.xml","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/2385f0a882bfe988de182865.xml"},{"id":93676662,"identity":"6a61c3bb-188c-4559-b827-f2d5ab8c7798","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"jpg","order_by":15,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":3729881,"visible":true,"origin":"","legend":"","description":"","filename":"Figure1.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/b48daa8af36c060dcf549935.jpg"},{"id":93677901,"identity":"329205f4-be97-4a81-97c2-9daecddbdb98","added_by":"auto","created_at":"2025-10-16 11:28:20","extension":"jpg","order_by":16,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1638890,"visible":true,"origin":"","legend":"","description":"","filename":"Figure2.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8461d005fb96bbb283e2172a.jpg"},{"id":93676874,"identity":"fbb171f2-1031-46c8-bb41-dc728fb64d9b","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"jpg","order_by":17,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1880878,"visible":true,"origin":"","legend":"","description":"","filename":"Figure3.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/49eaa07d15c39eb13c92cabf.jpg"},{"id":93676664,"identity":"a94f8b46-4dcf-40d6-9988-c18a0791f046","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"jpg","order_by":18,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1106833,"visible":true,"origin":"","legend":"","description":"","filename":"Figure4.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/111d5b4cdf80b6b9e10284bb.jpg"},{"id":93676661,"identity":"71f9ac08-b380-4c52-b07d-5a61caa2ee4d","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"jpg","order_by":19,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1907973,"visible":true,"origin":"","legend":"","description":"","filename":"Figure5.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/7814c36c51f99656f07c6a1c.jpg"},{"id":93676651,"identity":"049a987a-bf6c-4b78-8006-03eaffd62e73","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"jpg","order_by":20,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1361176,"visible":true,"origin":"","legend":"","description":"","filename":"Figure6.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/7a51a8af1619d2e98e34e642.jpg"},{"id":93677903,"identity":"fe31b0d0-00ab-4edd-ade6-2ecadafbafa9","added_by":"auto","created_at":"2025-10-16 11:28:20","extension":"jpg","order_by":21,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1356656,"visible":true,"origin":"","legend":"","description":"","filename":"Figure7.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/9e162e64b3440f7217454010.jpg"},{"id":93676668,"identity":"37abc703-bb2f-4263-9a19-d1894cab87f2","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"jpg","order_by":22,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1089543,"visible":true,"origin":"","legend":"","description":"","filename":"Figure8.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/3061ae6604cd49f38f93da66.jpg"},{"id":93676663,"identity":"bb56dae7-5015-4c93-ba83-5059d9d21eb9","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"png","order_by":23,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1124330,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure1.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/e477473d02bc754e7a70e395.png"},{"id":93676653,"identity":"00074c5e-29b8-467d-b6a2-e5a538831f40","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"png","order_by":24,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":710671,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure2.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/0613ef2ba5efaa8a5c70c73a.png"},{"id":93676660,"identity":"f87d3ac4-08b9-454b-aa1a-ea2a182917bd","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"png","order_by":25,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":919401,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure3.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/000eb5f9f52a4735725d799b.png"},{"id":93676876,"identity":"5a22d9d6-67fa-4d3e-8284-b00d412574c5","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"png","order_by":26,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":391345,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure4.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/1806257070168a57d27c2ca2.png"},{"id":93677902,"identity":"dba48054-31a2-4db9-b10d-d97f67256916","added_by":"auto","created_at":"2025-10-16 11:28:20","extension":"png","order_by":27,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":550465,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure5.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8a41b0e529253c94861818e0.png"},{"id":93676657,"identity":"eab8ea6e-8607-42d8-aafc-ed068871ec7e","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"png","order_by":28,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":703928,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure6.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/fa5262841be008ed892e4518.png"},{"id":93676665,"identity":"bdf4dedc-4310-4045-81c2-45f02d071533","added_by":"auto","created_at":"2025-10-16 11:12:20","extension":"png","order_by":29,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":1353903,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure7.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/feba9354a5a91b775782c6cc.png"},{"id":93676875,"identity":"bd664971-6091-42b7-8302-d2a8cb0917ce","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"png","order_by":30,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":392605,"visible":true,"origin":"","legend":"","description":"","filename":"OnlineFigure8.png","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/4187a408116efa62eb1761d2.png"},{"id":93676877,"identity":"5b5af4f2-08d4-466a-9ba8-ba69e026ac44","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"xml","order_by":31,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":177417,"visible":true,"origin":"","legend":"","description":"","filename":"9fc79beccec7453785e2cc247b4e4d471structuring.xml","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/eb73ddc327b833fac6af384e.xml"},{"id":93676880,"identity":"6c031cb7-6397-42d9-93ff-d48ab4adcf19","added_by":"auto","created_at":"2025-10-16 11:20:20","extension":"html","order_by":32,"title":"","display":"","copyAsset":false,"role":"acdc-reference","size":192120,"visible":true,"origin":"","legend":"","description":"","filename":"earlyproof.html","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8ea19e0f0bd3fcc20c51e592.html"},{"id":93676628,"identity":"a78ea912-c10e-48e8-b422-a063cc689eac","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"jpg","order_by":1,"title":"Figure 1","display":"","copyAsset":false,"role":"figure","size":3729881,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eSequence alignment of the wheat YABBYs.\u003c/strong\u003e Members of the\u003cem\u003e TaYABBY\u003c/em\u003egene family are characterized by two highly conserved domains: a C2-C2 zinc finger domain in the N-terminal and a YABBY domain (PF04690) in the C-terminal.\u003c/p\u003e","description":"","filename":"Figure1.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/57cf9d8974c6294b5f77b805.jpg"},{"id":93676857,"identity":"c770225e-4809-4af7-b9a1-79954df97695","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"jpg","order_by":2,"title":"Figure 2","display":"","copyAsset":false,"role":"figure","size":1638890,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003ePhylogenetic analysis, chromosomal distribution, gene structure, and conserved motifs of \u003c/strong\u003e\u003cem\u003e\u003cstrong\u003eTaYABBYs\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003e. (A) \u003c/strong\u003ePhylogenetic relationships among YABBY proteins in \u003cem\u003eTriticum aestivum L.\u003c/em\u003e, \u003cem\u003eOryza sativa\u003c/em\u003e, and \u003cem\u003eArabidopsis thaliana\u003c/em\u003e.\u003cstrong\u003e \u003c/strong\u003eThe outer circle is color-coded with light green, orange, yellow, plum red, and mauve, representing the FIL/YAB3, YAB5, YAB2, CRC, and INO subgroups, respectively. Pentacles denote the TaYABBYs. (\u003cstrong\u003e(B\u003c/strong\u003e) The distribution of \u003cem\u003eTaYABBY\u003c/em\u003es on chromosomes. \u003cstrong\u003e(C) \u003c/strong\u003eAnalysis of the motifs and gene structure of TaYABBYs. Exons are depicted as green boxes, UTRs in yellow, and black lines connecting two exons represent introns. Ten conserved motifs are identified in TaYABBYs.\u003c/p\u003e","description":"","filename":"Figure2.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/12f10a0f3e2f1d43097dc0b4.jpg"},{"id":93676630,"identity":"903fa784-2387-492b-9914-b57c19ddd391","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"jpg","order_by":3,"title":"Figure 3","display":"","copyAsset":false,"role":"figure","size":1880878,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eSynteny anaysis related to \u003c/strong\u003e\u003cem\u003e\u003cstrong\u003eYABBYs\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003e the genome of Arabidopsis, wheat, and rice.\u003c/strong\u003e The blue lines represent the colinear \u003cem\u003eTaYABBYs\u003c/em\u003e pairs.\u003c/p\u003e","description":"","filename":"Figure3.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8aebe1890a06d868b4a40da1.jpg"},{"id":93676860,"identity":"c02d669b-10a2-4bc4-87ad-22b47003a2cb","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"jpg","order_by":4,"title":"Figure 4","display":"","copyAsset":false,"role":"figure","size":1106833,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cem\u003e\u003cstrong\u003eCis\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003e-acting regulatory elements analysis of \u003c/strong\u003e\u003cem\u003e\u003cstrong\u003eTaYABBY\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003es. \u003c/strong\u003eDifferent colors indicate different \u003cem\u003ecis\u003c/em\u003e-acting regulatory elements.\u003c/p\u003e","description":"","filename":"Figure4.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/38a9704c8f59fa41e47e16cc.jpg"},{"id":93678042,"identity":"cdc79b30-0427-4985-9c4b-41eeefd46e1b","added_by":"auto","created_at":"2025-10-16 11:36:19","extension":"jpg","order_by":5,"title":"Figure 5","display":"","copyAsset":false,"role":"figure","size":1907973,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eExpression patterns of \u003c/strong\u003e\u003cem\u003e\u003cstrong\u003eTaYABBYs\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003e.\u003c/strong\u003e (A) Heatmap of expression profiles for \u003cem\u003eTaYABBYs\u003c/em\u003ein diverse tissues and stages. 10DAP, 20DAP, 30DAP represent the early, middle and late stages of endosperm development, respectively. DPA: Days post-anthesis. (B) RNA-seq analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e in grain development. Grain expression heat map of Yaomai36, Pinyu8175 and Pinyu8155, Yaomai30, at filling stage. MRS. milk ripe stage, DP. dough period, WRS. wax ripe stage.\u003c/p\u003e","description":"","filename":"Figure5.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/30231178251f3efa7e1c21f8.jpg"},{"id":93676643,"identity":"3ef1465a-4966-47b4-8c04-4b8c73ab0b96","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"jpg","order_by":6,"title":"Figure 6","display":"","copyAsset":false,"role":"figure","size":1361176,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eTranscriptome validation and expression analysis by real-time qPCR, subcellular localization, and transcriptional activity of \u003c/strong\u003e\u003cem\u003e\u003cstrong\u003eTaYABBY4A\u003c/strong\u003e\u003c/em\u003e\u003cstrong\u003e. \u003c/strong\u003e(A) \u003cem\u003eTaActin\u003c/em\u003e was used as a reference gene. Each error bar represents the standard deviation of three biological replicates. MRS. milk ripe stage, DP. dough period, WRS. wax ripe stage. (B) Relative expression analysis of \u003cem\u003eTaYABBY4A\u003c/em\u003e. Significant differences among different comparisons were determined with Duncan’s multiple range test, and significant indicated by ** (p \u0026lt; 0.01). (C) Verification of the transcriptional self-activation activity of TaYABBY4A.\u003cstrong\u003e \u003c/strong\u003e1, 10\u003csup\u003e-1\u003c/sup\u003e, 10\u003csup\u003e-2\u003c/sup\u003e, 10\u003csup\u003e-3\u003c/sup\u003e, 10\u003csup\u003e-4\u003c/sup\u003e represent solution dilution tatio of transformed Y2H-Gold yeast cells. (D) Subcellular localization of \u003cem\u003eTaYABBY4A.\u003c/em\u003e Confocal images manifested the localization of TaYABBY4A::GFP in the nuclei of onion epidermal cells. DAPI, a nuclear staining dye; Merge, the merged images of bright-field, GFP, and DAPI staining. 35S::GFP was used as a control. Scale bar = 10 µm.\u003c/p\u003e","description":"","filename":"Figure6.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/8dfce6e3ad665fb21a2ffada.jpg"},{"id":93678043,"identity":"a97f5ba2-531f-46bb-a472-1fc41d9c5a41","added_by":"auto","created_at":"2025-10-16 11:36:19","extension":"jpg","order_by":7,"title":"Figure 7","display":"","copyAsset":false,"role":"figure","size":1356656,"visible":true,"origin":"","legend":"\u003cp\u003ePhenotypic analyses of \u003cem\u003eTaYABBY4A\u003c/em\u003e transgenic Arabidopsis lines at the growth stage.\u003c/p\u003e\n\u003cp\u003e(A)Phenotypes of WT and transgenic lines at 25 days, Bar, 3 cm. (B) Phenotypes of WT and transgenic lines at 28 days, Bar, 3 cm. (C) Phenotypes of WT and transgenic lines at 50 days, Bar, 5 cm. (D) Bolting time. (E) Flowering time. (F) Rosette leaf number. (G) Rosette diameter. Duncan's multiple range test was used to determine significant differences between different comparison groups, with **(p \u0026lt; 0.01) indicating significance.\u003c/p\u003e","description":"","filename":"Figure7.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/c148f5546bf008981c935fd9.jpg"},{"id":93676639,"identity":"c510a0ff-e8f1-409c-9b2b-40c983a5d0c2","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"jpg","order_by":8,"title":"Figure 8","display":"","copyAsset":false,"role":"figure","size":1089543,"visible":true,"origin":"","legend":"\u003cp\u003ePhenotypic analyses of \u003cem\u003eTaYABBY4A\u003c/em\u003ein transgenic Arabidopsis siliques and seeds. (A) Siliques of WT and overexpression lines, Bar, 2 mm. (B) Silique length. (C) Seed length. (D) Seed diameter. Duncan's multiple range test was used to determine significant differences between different comparison groups, with **(p \u0026lt; 0.01) indicating significance.\u003c/p\u003e","description":"","filename":"Figure8.jpg","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/226954d4c82637824715afed.jpg"},{"id":99545370,"identity":"be5039b8-62c8-4932-b8a1-404a98ebb0a2","added_by":"auto","created_at":"2026-01-05 16:06:37","extension":"pdf","order_by":0,"title":"","display":"","copyAsset":false,"role":"manuscript-pdf","size":18175026,"visible":true,"origin":"","legend":"","description":"","filename":"manuscript.pdf","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/3d38b092-22c0-4fb5-8abf-2921ccedf635.pdf"},{"id":93677894,"identity":"81b7cba0-0805-40b2-ba83-55d760204624","added_by":"auto","created_at":"2025-10-16 11:28:19","extension":"xlsx","order_by":1,"title":"","display":"","copyAsset":false,"role":"supplement","size":11630,"visible":true,"origin":"","legend":"\u003cp\u003eTable 1 Characteristics of YABBY gene family in wheat.\u003c/p\u003e","description":"","filename":"Table1.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/a96ccb945e9977451d186df0.xlsx"},{"id":93676858,"identity":"6cd82d96-9412-40ef-a2d1-3aeb66f0f509","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"xlsx","order_by":2,"title":"","display":"","copyAsset":false,"role":"supplement","size":10656,"visible":true,"origin":"","legend":"\u003cp\u003eTable 2 Ka/Ks ratio and homology of homologous genes\u003c/p\u003e","description":"","filename":"Table2.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/c4eb0433eab8dcfae76fea96.xlsx"},{"id":93676863,"identity":"763a2e62-cbae-49a1-9c83-839057fa33ad","added_by":"auto","created_at":"2025-10-16 11:20:19","extension":"xlsx","order_by":3,"title":"","display":"","copyAsset":false,"role":"supplement","size":10480,"visible":true,"origin":"","legend":"\u003cp\u003eTable 3 Haplotype number of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/p\u003e","description":"","filename":"Table3.xlsx","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/5f8d48b3578ccb4cea1d5a04.xlsx"},{"id":93676646,"identity":"b7de9fe8-e7af-422b-96d3-fd1b7f737dc9","added_by":"auto","created_at":"2025-10-16 11:12:19","extension":"zip","order_by":4,"title":"","display":"","copyAsset":false,"role":"supplement","size":286284,"visible":true,"origin":"","legend":"","description":"","filename":"SupplementaryMaterials.zip","url":"https://assets-eu.researchsquare.com/files/rs-7691254/v1/c0887badd065258596afab55.zip"}],"financialInterests":"No competing interests reported.","formattedTitle":"Genome-wide identification of the YABBY gene family and functional characterization of TaYABBY4A in wheat (Triticum aestivum L.)","fulltext":[{"header":"Introduction","content":"\u003cp\u003eTranscription factors (TFs) are key regulators of gene expression, either alone or combined with other factors, by binding to the cis-elements of their target genes. One gene can control an important agronomic trait. As a small family of transcription factors, the YABBYs are predominantly observed in seed plants.[\u003cspan citationid=\"CR1\" class=\"CitationRef\"\u003e1\u003c/span\u003e]. A feature of the members of this family is that they share two highly conserved domains: the classical C2C2 zinc finger domain in N-terminal region, and the basic helix-loop-helix (bHLH) in the C-terminal region, called the YABBY domain[\u003cspan citationid=\"CR2\" class=\"CitationRef\"\u003e2\u003c/span\u003e]. YABBYs can regulate gene expression as both activators and suppressors, and the functions of YABBYs correlate with their expression profiles directly or indirectly [\u003cspan additionalcitationids=\"CR4\" citationid=\"CR3\" class=\"CitationRef\"\u003e3\u003c/span\u003e\u0026ndash;\u003cspan citationid=\"CR5\" class=\"CitationRef\"\u003e5\u003c/span\u003e]. Studies have found that YABBYs function in plant development and growth[\u003cspan citationid=\"CR6\" class=\"CitationRef\"\u003e6\u003c/span\u003e, \u003cspan citationid=\"CR7\" class=\"CitationRef\"\u003e7\u003c/span\u003e].\u003c/p\u003e\u003cp\u003eTo date, researchers have identified the YABBY gene family in different plant species through genome-wide analysis[\u003cspan citationid=\"CR8\" class=\"CitationRef\"\u003e8\u003c/span\u003e]. A total of 6 YABBYs had been identified in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e [\u003cspan citationid=\"CR5\" class=\"CitationRef\"\u003e5\u003c/span\u003e], 8 in \u003cem\u003eOryza sativa\u003c/em\u003e [\u003cspan citationid=\"CR9\" class=\"CitationRef\"\u003e9\u003c/span\u003e], 17 in \u003cem\u003eGlycine max\u003c/em\u003e [\u003cspan citationid=\"CR10\" class=\"CitationRef\"\u003e10\u003c/span\u003e], 7 in \u003cem\u003eVitis vinifera\u003c/em\u003e L. [\u003cspan citationid=\"CR11\" class=\"CitationRef\"\u003e11\u003c/span\u003e], and 9 in \u003cem\u003eSolanum lycopersicum\u003c/em\u003e L. [\u003cspan citationid=\"CR12\" class=\"CitationRef\"\u003e12\u003c/span\u003e]. During rice domestication, OsSh1 and ObSh3 played a key role in promoting seed shattering[\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e]. The FIL/YAB3 group genes (\u003cem\u003eOsYABBY3/4/5\u003c/em\u003e) were highly transcribed in the spikelets, while \u003cem\u003eOsDL\u003c/em\u003e was mainly expressed in pistils, inner and outer epidermis, and spikelets[\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e]. Overexpression of grape \u003cem\u003eVvYABBY4\u003c/em\u003e in tomato was found to affect plant growth and development as well as fruit formation[\u003cspan citationid=\"CR14\" class=\"CitationRef\"\u003e14\u003c/span\u003e]. Orashakova discovered that \u003cem\u003eEcCRC\u003c/em\u003e transcription was downregulated during ovule development[\u003cspan citationid=\"CR15\" class=\"CitationRef\"\u003e15\u003c/span\u003e].Some identified YABBY homologous genes in cotton were expressed in ovules[\u003cspan citationid=\"CR16\" class=\"CitationRef\"\u003e16\u003c/span\u003e]. Overexpression of \u003cem\u003eSiDL\u003c/em\u003e from the YABBY family of foxtail millet in Arabidopsis resulted in dwarf plants and reduced fruit and seed diameters[\u003cspan citationid=\"CR17\" class=\"CitationRef\"\u003e17\u003c/span\u003e]. These research results indicate that YABBYs play an important role in plant reproductive growth and development. Recent studies have shown that YABBYs have important regulatory functions in gramineous crops[\u003cspan citationid=\"CR18\" class=\"CitationRef\"\u003e18\u003c/span\u003e]. Wheat (\u003cem\u003eTriticum aestivum\u003c/em\u003e L.) is a globally crucial food crop, with its grain development directly determining yield and quality[\u003cspan citationid=\"CR19\" class=\"CitationRef\"\u003e19\u003c/span\u003e]. TFs are pivotal in the complex regulatory network of wheat grain development[\u003cspan citationid=\"CR7\" class=\"CitationRef\"\u003e7\u003c/span\u003e]. However, their specific role in wheat grain development remains unclear.\u003c/p\u003e\u003cp\u003eIn this study, a genome-wide search method utilizing the latest Chinese Spring wheat genome information was employed to identify 21 \u003cem\u003eTaYABBYs\u003c/em\u003e. Through bioinformatics analysis, the physicochemical properties, phylogenetic relationships, gene structures, conserved motifs, chromosomal locations, and cis-acting promoter elements of these genes were systematically analyzed. Haplotype analysis revealed the genetic variation characteristics of \u003cem\u003eTaYABBYs\u003c/em\u003e in wheat. Subsequently, based on publicly available transcriptome data and RNA-seq data of developing grains (grain filling stage) from Yaomai 36, Pinyu 8175, Pinyu 8155, and Yaomai 30, the expression patterns of \u003cem\u003eTaYABBYs\u003c/em\u003e in different wheat tissues and endosperm development stages were analyzed. Finally, the function of \u003cem\u003eTaYABBY4A\u003c/em\u003e was identified in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e. This study aims to analyze wheat \u003cem\u003eYABBYs\u003c/em\u003e and their functional characteristics at the genome-wide level, laying a foundation for in-depth exploration of their evolutionary history and functional mechanisms.\u003c/p\u003e"},{"header":"Results","content":"\u003cdiv id=\"Sec3\" class=\"Section2\"\u003e\u003ch2\u003eIdentification and sequence characteristics analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/h2\u003e\u003cp\u003eUsing the Pfam and Phytozome v13 programs, 21 members of the YABBY gene family were identified in the Chinese Spring genome. Analysis of the amino acid sequences produced the sequence logo and annotation of the YABBY domain (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003e). All TaYABBYs possess two conserved DNA-binding domains: an N-terminal C2-C2 zinc finger domain and a C-terminal YABBY domain. Within the C2-C2 zinc finger domain, the cysteine (C) and histidine (H) residues responsible for Zn\u0026sup2;⁺ binding are conserved. At the C-terminus, within the YABBY domain, 27 amino acid residues are 100% conserved, including five alanine (A), three proline (P), two serine (S), and three isoleucine (I) residues. This conservation is essential for the domain's structure and function. Notably, TaYABBY2A/B/D and TaYABBY4A/5B/5D exhibit higher variability in both domains, suggesting functional diversity. This divergence may equip these genes with unique roles in plant growth, development, and environmental responses.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003eAccording to the annotation of the wheat genome, among the 21 wheat chromosomes, 21 \u003cem\u003eTaYABBY\u003c/em\u003es were found to be unevenly distributed across 15 chromosomes (Table\u0026nbsp;1). Based on their consecutive chromosomal positions and homology relationships, these \u003cem\u003eYABBYs\u003c/em\u003e were systematically designated as \u003cem\u003eTaYABBY1A\u003c/em\u003e-\u003cem\u003eTaYABBY8D\u003c/em\u003e. The coding sequence (CDS) lengths of the \u003cem\u003eTaYABBYs\u003c/em\u003e varied significantly. The deduced length of CDS ranged from 495 bp (\u003cem\u003eTaYABBY2D\u003c/em\u003e) to 894 bp (\u003cem\u003eTaYABBY1A/B\u003c/em\u003e). Amino acid sequence lengths also varied widely, from 164 aa (TaYABBY2D) to 297 aa (TaYABBY1A/B), leading to substantial differences in predicted protein molecular weights, ranging from 17.76 kDa (TaYABBY2D) to 31.44 kDa (TaYABBY1B). Additionally, the theoretical isoelectric points (pI) of these proteins varied from 5.62 (TaYABBY2A) to 9.48 (TaYABBY7B). The subcellular localization of all 21 TaYABBYs was predicted by Plant-mPLoc, and the results indicated that these genes are situated in the nucleus.\u003c/p\u003e\u003c/div\u003e\n\u003ch3\u003ePhylogenetic analysis, chromosomal location, gene structure, and conserved motifs of \u003c/h3\u003e\n\u003cdiv class=\"Heading\"\u003ePhylogenetic analysis, chromosomal location, gene structure, and conserved motifs of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/div\u003e\u003cp\u003eTo investigate the evolutionary relationships between wheat and other plant species, a comprehensive phylogenetic tree was constructed using the Neighbor-Joining (NJ) method (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eA). Like Arabidopsis, TaYABBYs were categorized into five subfamilies: FIL/YAB3, YAB2, CRC, INO, and YAB5. However, the wheat TaYABBYs do not include the YAB5 subfamily. Within these, the YAB2 and FIL/YAB3 subfamilies had a larger number of members (with 6 in YAB2 and 9 in FIL/YAB3), while INO and CRC had the fewest, with 3 members each. The findings indicate that YABBYs in wheat are relatively conserved and may have acquired functional diversity throughout wheat evolution, potentially associated with its distinctive physiological and morphological characteristics. A total of 21 \u003cem\u003eTaYABBY\u003c/em\u003es were identified within the wheat genome, distributed unevenly across 15 of the 21 chromosomes (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eB).\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003eTo investigate the gene structure and conserved motifs of the \u003cem\u003eTaYABBYs\u003c/em\u003e, we predicted exon-intron structures and ten conserved motifs using the MEME program and visualized them with TBtools (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eC). Analysis of 21 \u003cem\u003eTaYABBYs\u003c/em\u003e revealed that all subfamilies exhibited similar exon-intron architectures. Furthermore, the gene structures of members within the same subfamily were more similar to each other than to those of members from different subfamilies. Specifically, members of the FIL/YAB3 and CRC sub-families typically possessed seven exons and six introns, whereas those of the YAB2 sub-family generally had six exons and five introns. However, \u003cem\u003eTaYABBY7D\u003c/em\u003e in the YAB2 family was an exception, featuring seven exons and six introns, which may be attributed to evolutionary changes.Analysis of conserved motifs revealed that motifs 1, 2, 3, and 6 were present in every member, indicating that they are likely specific to the YABBYs. Further investigation indicated that motif 1 forms the YABBY domain at the C-terminus, and motifs 2 and 3 constitute the C2-C2 domain at the N-terminus. The FIL/YAB3 sub-family was characterized by motif 9. Notably, motif 10 was present in both the YAB3 and YAB2 clades, whereas TaYABBY3A lacks motif 2. The INO sub-family possessed a unique set of motifs (motifs 1, 2, 3, 5, 6), while members of the YAB2 (TaYABBY7A, TaYABBY7B, and TaYABBY7D) and CRC sub-families shared the same set of motifs (motifs 1, 2, 3, 4, 6, 7). The prediction of functional motifs indicated that members of each subgroup shared the same conserved motifs, suggesting that they may have similar functions.\u003c/p\u003e\n\u003ch3\u003eIntraspecific and intermediate collinearity analysis of \u003c/h3\u003e\n\u003cdiv class=\"Heading\"\u003eIntraspecific and intermediate collinearity analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/div\u003e\u003cp\u003eWe utilized MCScanX within TBtools to examine tandem and fragment replication events in wheat (Figure \u003cspan refid=\"MOESM1\" class=\"InternalRef\"\u003eS1\u003c/span\u003e). The findings indicated the presence of 24 pairs of fragment replication genes and 11 pairs of tandem replication genes within \u003cem\u003eTaYABBYs\u003c/em\u003e. Additionally, it was observed that gene duplication events were more prevalent on chromosome 5 compared to the other chromosomes. To assess the evolutionary constraints on duplicated gene pairs, the Ka and Ks parameters were computed. All \u003cem\u003eTaYABBYs\u003c/em\u003e homologous genes exhibited a Ka/Ks\u0026thinsp;\u0026lt;\u0026thinsp;1, implying that they experienced strong purifying selection throughout their evolution (Table\u0026nbsp;2).\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003eFurthermore, to elucidate the evolutionary mechanism of \u003cem\u003eTaYABBYs\u003c/em\u003e, comparative syntenic blocks were constructed among Arabidopsis, wheat, and rice (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e3\u003c/span\u003e). We identified 19 syntenic orthologous gene pairs between wheat and rice, where multiple \u003cem\u003eTaYABBYs\u003c/em\u003e were matched with a single \u003cem\u003eOsYABBY\u003c/em\u003e. In contrast, none were found between wheat and Arabidopsis, likely due to their early evolutionary divergence as a dicot and a monocot, respectively, hindering the identification of collinear gene regions.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\n\u003ch3\u003eAnalysis of cis-acting elements in the promoter regions of \u003c/h3\u003e\n\u003cdiv class=\"Heading\"\u003eAnalysis of cis-acting elements in the promoter regions of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/div\u003e\u003cp\u003eTo uncover the potential functions of \u003cem\u003eTaYABBYs\u003c/em\u003e, 2000 bp upstream sequences of 21 \u003cem\u003eTaYABBYs\u003c/em\u003e transcription start sites were extracted from the wheat genome using TBtools and analyzed for \u003cem\u003ecis\u003c/em\u003e-acting elements via the online PlantCARE database (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e4\u003c/span\u003e, Table \u003cspan refid=\"MOESM1\" class=\"InternalRef\"\u003eS1\u003c/span\u003e). The predicted elements primarily relate to plant hormone, development, stress, and light responses. Notably, 18 seed-specific and 20 zein metabolism-regulatory elements, directly related to endosperm development, were detected. Additionally, 269 light-responsive, 253 plant hormone-responsive, and 73 stress-responsive elements were found, with light-responsive elements being prevalent in most \u003cem\u003eYABBY\u003c/em\u003e promoters. These findings suggest that \u003cem\u003eTaYABBYs\u003c/em\u003e may function in light and hormone responses, plant growth, development, and stress responses.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\n\u003ch3\u003eHaplotype analysis of \u003c/h3\u003e\n\u003cdiv class=\"Heading\"\u003eHaplotype analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e\u003c/div\u003e\u003cp\u003eTo further explore the genetic variation of \u003cem\u003eTaYABBYs\u003c/em\u003e, haplotype analysis was performed on 21 \u003cem\u003eTaYABBYs\u003c/em\u003e with genetic variation information using Lufei resequencing datas (Table\u0026nbsp;3). The results showed that the number of haplotypes of \u003cem\u003eTaYABBYs\u003c/em\u003e was lower in cultivated varieties, but higher in landrace varieties and Spelt. Globally, the number of haplotypes of \u003cem\u003eTaYABBYs\u003c/em\u003e was higher in Asia and Europe, while the number of haplotypes in Africa, North America, and South America was lower. Concurrently, we also analyzed the haplotypes of spring wheat and winter wheat. The results showed that the number of haplotypes of spring wheat and winter wheat was greater than that of facultative wheat. Notely, there was no genetic variation of \u003cem\u003eTaYABBY1B/3A/2B/6A/8B/8D\u003c/em\u003e, indicating that these genes were relatively stable and had better adaptability to different environments. In contrast, genes such as \u003cem\u003eTaYABBY5B/7A/6B/7B/7D/8A\u003c/em\u003e, exhibit relatively high haplotype variation, suggesting greater genetic diversity. These distributions provide insights into the genetic variation and adaptation of \u003cem\u003eTaYABBYs\u003c/em\u003e in different wheat-related groups.\u003c/p\u003e\u003cdiv id=\"Sec8\" class=\"Section2\"\u003e\u003ch2\u003eAnaysis of \u003cem\u003eTaYABBYs\u003c/em\u003e expression pattern based on RNA-seq\u003c/h2\u003e\u003cp\u003eTo investigate the functions of \u003cem\u003eTaYABBYs\u003c/em\u003e, we analyzed the spatiotemporal expression of 21 \u003cem\u003eTaYABBYs\u003c/em\u003e in different tissues and during various stages of endosperm development (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e5\u003c/span\u003eA, Table S2). All genes exhibited low or negligible expression in roots and stems, but higher expression levels in spikes and endosperm. Genes within the same subfamily displayed both similarities and distinct differences in their expression patterns. During endosperm development, members of the YAB3/FIL and CRC subfamilies remained unexpressed. In contrast, \u003cem\u003eTaYABBY2D\u003c/em\u003e from the INO subfamily, as well as \u003cem\u003eTaYABBY6A/B/D\u003c/em\u003e and \u003cem\u003eTaYABBY7A/B\u003c/em\u003e from the YAB2 subfamily, were expressed. \u003cem\u003eTaYABBY6A/B/D\u003c/em\u003e and \u003cem\u003eTaYABBY7A/B\u003c/em\u003e exhibited relatively high expression levels at 10 days post-pollination (10DPA) of endosperm development. \u003cem\u003eTaYABBY2D\u003c/em\u003e and \u003cem\u003eTaYABBY6B/D\u003c/em\u003e showed relatively higher expression levels at 20DPA, and only \u003cem\u003eTaYABBY2D\u003c/em\u003e continued to be expressed at 30DPA. These findings suggest that \u003cem\u003eTaYABBYs\u003c/em\u003e play a role in the process of reproductive growth, which aligns with the outcomes of promoter analysis.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003eBased on \u003cem\u003eTaYABBYs\u003c/em\u003e predictions regarding wheat grain development, the transcriptomes of \u003cem\u003eTaYABBY\u003c/em\u003e during the grain-filling stage were sequenced for four wheat varieties: \u0026lsquo;Yaomai 36\u0026rsquo;, 'Pinyu 8175\u0026lsquo;, 'Pinyu 8155\u0026rsquo;, and 'Yaomai\u0026rsquo; 30 (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e5\u003c/span\u003eB and Table S3).The results indicated that the genes from the YAB2 and CRC subfamilies in all four varieties displayed higher expression at the milk ripe stage (MRS), moderate expression at the dough stage (DP), and lower expression at the wax ripe stage (WRS), with significant differences noted. In 'Yaomai 36', among the genes of the INO subfamily, only \u003cem\u003eTaYABBY2D\u003c/em\u003e exhibited the highest expression level at the WRS stage; for genes of the YAB3/FIL subfamily, \u003cem\u003eTaYABBY3B\u003c/em\u003e, \u003cem\u003eTaYABBY3D\u003c/em\u003e, \u003cem\u003eTaYABBY3A\u003c/em\u003e, \u003cem\u003eTaYABBY8A\u003c/em\u003e, \u003cem\u003eTaYABBY8B\u003c/em\u003e, and \u003cem\u003eTaYABBY8D\u003c/em\u003e were highly expressed at the DP stage, whereas \u003cem\u003eTaYABBY1A\u003c/em\u003e, \u003cem\u003eTaYABBY1B\u003c/em\u003e, and \u003cem\u003eTaYABBY1D\u003c/em\u003e were highly expressed at the MRS stage. In 'Pinyu 8175', the INO subfamily gene \u003cem\u003eTaYABBY2D\u003c/em\u003e exhibited the lowest expression at the DP stage; among the YAB3/FIL subfamily genes, with the exception of \u003cem\u003eTaYABBY1B\u003c/em\u003e, which was highly expressed at the MRS stage, the others were highly expressed at both the DP and WRS stages. In 'Pinyu 8155', the INO subfamily genes were highly expressed at the WRS stage and exhibited low expression at the MRS and DP stages; among the YAB3/FIL subfamily genes, only \u003cem\u003eTaYABBY3D\u003c/em\u003e was highly expressed at the WRS stage. In 'Yaomai 30', the INO subfamily gene \u003cem\u003eTaYABBY2D\u003c/em\u003e exhibited the highest expression level at the MRS stage; among the YAB3/FIL subfamily genes, \u003cem\u003eTaYABBY3B\u003c/em\u003e, \u003cem\u003eTaYABBY3D\u003c/em\u003e, and \u003cem\u003eTaYABBY1B\u003c/em\u003e were highly expressed at the MRS stage, while \u003cem\u003eTaYABBY8B\u003c/em\u003e and \u003cem\u003eTaYABBY1D\u003c/em\u003e were highly expressed at the DP stage. The results indicate that the \u003cem\u003eTaYABBYs\u003c/em\u003e exhibit clear spatiotemporal specificity during grain development, with their expression levels varying significantly across different developmental stages. We chose \u003cem\u003eTaYABBY4A\u003c/em\u003e from the CRC family, which is closely associated with grain development, for functional validation of the \u003cem\u003eTaYABBYs\u003c/em\u003e.\u003c/p\u003e\u003c/div\u003e\n\u003ch3\u003eIdentification, subcellular localization, and transcriptional activity of \u003c/h3\u003e\n\u003cdiv class=\"Heading\"\u003eIdentification, subcellular localization, and transcriptional activity of \u003cem\u003eTaYABBY4A\u003c/em\u003e\u003c/div\u003e\u003cp\u003eTo further validate the accuracy of transcriptome sequencing and verify the function of \u003cem\u003eTaYABBYs\u003c/em\u003e, we conducted qRT-PCR detection of \u003cem\u003eTaYABBY4A\u003c/em\u003e during the endosperm development of wheat grains. The results indicated that the expression trend was consistent with the RNA-seq data prediction, exhibiting a gradual decrease in expression levels across the three stages of grain development (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e6\u003c/span\u003eA). Subsequently, real-time fluorescent quantitative PCR was performed on the 10 obtained transgenic Arabidopsis lines overexpressing \u003cem\u003eTaYABBY4A\u003c/em\u003e. The results (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e6\u003c/span\u003eB) indicated that the expression levels of OE1-OE10 were significantly higher than that of the WT, with OE3 and OE5 exhibiting the highest relative expression levels. Consequently, OE3 and OE5 were selected for further studies.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003eThe full-length cDNA of \u003cem\u003eTaYABBY4A\u003c/em\u003e was cloned into the pGBKT7 vector, and its self-activation ability was verified through yeast experiments (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e6\u003c/span\u003eC). The negative control pGBKT7, positive control pGADT7-PtrWOX13A, and pGBKT7-TaYABBY4A all grew on SD/\u0026minus;Trp medium, confirming the accuracy of the experimental procedures and operations. pGBKT7-TaYABBY4A failed to form monoclonal colonies on SD/\u0026minus;Trp/\u0026minus;Ade/\u0026minus;His/X-α-gal medium, indicating that \u003cem\u003eTaYABBY4A\u003c/em\u003e does not possess self-activation ability and may require the assistance of other proteins to function. Thus, it can be utilized as a bait to screen for interacting genes in the cDNA library, thereby further exploring the potential functions of TaYABBY proteins.\u003c/p\u003e\u003cp\u003eSubcellular localization can reveal the specific cellular compartment in which the TaYABBY4A operates. The results (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e6\u003c/span\u003eD) indicated that the green fluorescence of the control protein 35S::GFP was observed in the nucleus, cytoplasm, and cell membrane. In contrast, the green fluorescence signal of the 35S::TaYABBY4A-GFP was detected solely in the nucleus, with the GFP fluorescence overlapping with DAPI fluorescence. This suggested that the TaYABBY4A was localized to the nucleus, aligning with the typical nuclear localization trait of most transcription factors.\u003c/p\u003e\u003cp\u003e\u003cb\u003ePhenotypic characterization of TaYABBY4A-overexpressing\u003c/b\u003e \u003cb\u003eArabidopsis thaliana\u003c/b\u003e\u003c/p\u003e\u003cp\u003ePhenotypic observations were conducted on WT and overexpression lines throughout the growth stage. The results (Figs.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e7\u003c/span\u003eA-C) indicated that at 25 days, OE-3 and OE-5 exhibited retarded growth and produced fewer rosette leaves. By day 28, WT had entered the flowering stage, whereas OE-3 and OE-5 had not yet begun bolting. At 50 days, both the number of bolts and the plant height of OE-3 and OE-5 were lower than those of WT. Further statistical analysis of bolting and flowering time (Figs.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e7\u003c/span\u003eD and \u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e7\u003c/span\u003eE) revealed that, compared with the WT, both OE-3 and OE-5 exhibited a significant delay in bolting and flowering. The statistical data on the number rosette leaves indicated that OE-3 and OE-5 had significantly fewer than WT, decreased by 27.03% (OE-3) and 37.84% (OE-5), respectively (Figs.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e7\u003c/span\u003eF). The diameter of rosette leaves (Figs.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e7\u003c/span\u003eG) indicated OE-3 and OE-5 had significantly smaller than WT, decreased by 27.46% (OE-3) and 31.15% (OE-5), respectively.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e\u003cp\u003ePhenotypic observations of the siliques from WT and overexpression lines indicated that the silique lengths of OE3 and OE5 were significantly shorter than WT, with reductions of 20.30% and 24.87%, respectively (Figs.\u0026nbsp;\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e8\u003c/span\u003eA and \u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e8\u003c/span\u003eB). Furthermore, the seed length and diameter of OE3 and OE5 were significantly shorter and narrower than WT. Specifically, the seed length decreased by 26.89% (OE3) and 31.09% (OE5), while the seed diameter decreased by 21.12% (OE3) and 29.58% (OE5) (Figs.\u0026nbsp;\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e8\u003c/span\u003eC and \u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e8\u003c/span\u003eD). These findings suggest that the \u003cem\u003eTaYABBY4A\u003c/em\u003e may be involved in regulating plant growth and development.\u003c/p\u003e\u003cp\u003e\u003c/p\u003e"},{"header":"Discussion","content":"\u003cp\u003e\u003cdiv class=\"BlockQuote\"\u003e\u003cp\u003e\u003cb\u003eGenome-wide identification of\u003c/b\u003e \u003cb\u003eYABBY\u003c/b\u003e \u003cb\u003egene family in wheat\u003c/b\u003e\u003c/p\u003e\u003c/div\u003e\u003c/p\u003e\u003cp\u003eIn the present study, 21 \u003cem\u003eTaYABBYs\u003c/em\u003e were identified in wheat. There are more YABBY members in wheat than in rice [\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e], Arabidopsis[\u003cspan citationid=\"CR20\" class=\"CitationRef\"\u003e20\u003c/span\u003e], soybean[\u003cspan citationid=\"CR10\" class=\"CitationRef\"\u003e10\u003c/span\u003e], and tomato[\u003cspan citationid=\"CR21\" class=\"CitationRef\"\u003e21\u003c/span\u003e], indicating that \u003cem\u003eTaYABBY\u003c/em\u003e has a more complex function. This reason is because wheat is a heterozygous polyploid. Phylogenetic analysis revealed that all TaYABBYs are classified into four clades: YAB3, YAB2, INO, and CRC. Among these clades, clade FIL/YAB3 contained the most of TaYABBYs, as what was reported in rice [\u003cspan citationid=\"CR9\" class=\"CitationRef\"\u003e9\u003c/span\u003e]. In comparison, TaYABBYs were divided into four clades, and no TaYABBY protein was found in clade YAB5, which might be lost in the interspecific differentiation process. This phenomenon is also found in \u003cem\u003eLactuca sativa\u003c/em\u003e, which loses clade YABBY2[\u003cspan citationid=\"CR22\" class=\"CitationRef\"\u003e22\u003c/span\u003e]. In addition, only four clades (CRC/DL, FIL, INO, and YAB2) were found in rice [\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e], the YAB5 clade does not exist in rice and other monocots[\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e], perhaps because YABBY has undergone functional differentiation during the process of plant evolution.\u003c/p\u003e\u003cp\u003eGene duplication events, particularly tandem duplication and fragment duplication, play an important role in the evolution and functional diversification of genomes. [\u003cspan citationid=\"CR22\" class=\"CitationRef\"\u003e22\u003c/span\u003e, \u003cspan citationid=\"CR26\" class=\"CitationRef\"\u003e26\u003c/span\u003e, \u003cspan citationid=\"CR29\" class=\"CitationRef\"\u003e29\u003c/span\u003e]. Wheat experienced multiple gene duplication events in its evolutionary history, including two significant allopolyploidization events. The first polyploidization event involved the combination of the A and B genomes to form tetraploid wheat[\u003cspan citationid=\"CR30\" class=\"CitationRef\"\u003e30\u003c/span\u003e]. The second polyploidization event occurred through hybridization between tetraploid wheat and a D genome donor to form hexaploid wheat[\u003cspan citationid=\"CR31\" class=\"CitationRef\"\u003e31\u003c/span\u003e]. Therefore, we analyzed the duplication patterns of the \u003cem\u003eTaYABBYs\u003c/em\u003e. There are 21 pairs of fragment duplication genes in \u003cem\u003eTaYABBYs\u003c/em\u003e that show collinearity. Our results indicate that fragment duplication is the main driving force for the expansion of the \u003cem\u003eTaYABBYs\u003c/em\u003e during evolution, which is consistent with previous finding in maize [\u003cspan citationid=\"CR32\" class=\"CitationRef\"\u003e32\u003c/span\u003e]. The lack of synteny between wheat and Arabidopsis may be attributed to the fact that Arabidopsis is a dicotyledonous plant, whereas wheat is a monocotyledonous plant. The early divergence in their evolutionary history has led to significant differences in their genomic structure and sequence. This observation is consistent with the findings of previous studies[\u003cspan citationid=\"CR8\" class=\"CitationRef\"\u003e8\u003c/span\u003e].\u003c/p\u003e\u003cp\u003eThe \u003cem\u003ecis\u003c/em\u003e-acting elements play a crucial role in transcriptional regulation, mediating diverse mechanisms of growth and development[\u003cspan citationid=\"CR27\" class=\"CitationRef\"\u003e27\u003c/span\u003e, \u003cspan citationid=\"CR33\" class=\"CitationRef\"\u003e33\u003c/span\u003e]. Prior research has demonstrated that \u003cem\u003eYABBYs\u003c/em\u003e are significantly involved in various biological processes [\u003cspan citationid=\"CR34\" class=\"CitationRef\"\u003e34\u003c/span\u003e, \u003cspan citationid=\"CR35\" class=\"CitationRef\"\u003e35\u003c/span\u003e]. In this study, a diverse array of plant regulatory \u003cem\u003ecis\u003c/em\u003e-acting elements were identified within the promoter regions of \u003cem\u003eTaYABBYs\u003c/em\u003e. Abscisic acid (ABA)-responsiveness and methyl jasmonate (MeJA)-responsiveness elements are critical for mediating plant responses to abiotic stress and disease resistance [\u003cspan citationid=\"CR29\" class=\"CitationRef\"\u003e29\u003c/span\u003e, \u003cspan citationid=\"CR35\" class=\"CitationRef\"\u003e35\u003c/span\u003e]. Additionally, these two types of elements are extensively involved in fruit development[\u003cspan citationid=\"CR24\" class=\"CitationRef\"\u003e24\u003c/span\u003e]. In wheat, ABA-responsive elements and MeJA-responsive elements are present in each \u003cem\u003eTaYABBY\u003c/em\u003e (except for \u003cem\u003eTaYABBY8A/B\u003c/em\u003e), indicating that \u003cem\u003eTaYABBYs\u003c/em\u003e can respond to various stresses and are involved in seed development. In addition, \u003cem\u003eYABBYs\u003c/em\u003e canregulate the seed development [\u003cspan citationid=\"CR24\" class=\"CitationRef\"\u003e24\u003c/span\u003e, \u003cspan citationid=\"CR36\" class=\"CitationRef\"\u003e36\u003c/span\u003e]. In the present study, 18 seed-specific and 20 zein metabolism-regulatory elements were found, suggesting that it may have similar function.\u003c/p\u003e\u003cp\u003eHaplotype analysis can reveal the genetic diversity of wheat and also help us identify signals of domestication and artificial selection [\u003cspan citationid=\"CR37\" class=\"CitationRef\"\u003e37\u003c/span\u003e]. In this study, the haplotype diversity of cultivated varieties was lower than that of landraces and spelt, indicating that these haplotypes may have been under strong selection during wheat domestication. Significant haplotype differences were observed among wheat varieties from different geographical regions, which may be related to local environmental adaptation, domestication history, and artificial selection. The haplotype diversity of spring, winter, and facultative wheat also showed significant differences, which may be associated with their mechanisms of response to temperature and photoperiod. These results indicate that haplotype analysis provides an important molecular basis for wheat genetic improvement.\u003c/p\u003e\u003cp\u003eIn this study, based on transcriptome data and qRT-PCR data, we conducted a comprehensive analysis of the expression profiles of \u003cem\u003eTaYABBYs\u003c/em\u003e across different organs and three distinct endosperm developmental stages. In wheat, \u003cem\u003eTaYABBY3\u003c/em\u003e is one of the key genes in the FIL/YAB3 clade, and its high expression in the spike may be closely related to spike morphology and the development of floral organs[\u003cspan citationid=\"CR31\" class=\"CitationRef\"\u003e31\u003c/span\u003e]. Consistent with previous studies, the FIL/YAB3 clade demonstrates high expression levels in the spike. Previous studies have indicated that genes within the CRC clade are expressed in reproductive organs, including stigmas and ovules [\u003cspan citationid=\"CR38\" class=\"CitationRef\"\u003e38\u003c/span\u003e]. Notably, in our transcriptome dataset, genes belonging to the CRC clade exhibited elevated expression during the milking stage for each variety, whereas they were expressed at minimal levels or were absent entirely in public databases. This discrepancy may be attributed to the fact that the public databases utilized Chinese Spring as the reference material, whereas our study employed winter wheat. RNA sequencing results revealed variations in the expression levels of \u003cem\u003eTaYABBYs\u003c/em\u003e throughout the grain-filling stage. These findings suggest that these genes may have direct or indirect impacts on the synthesis and accumulation of starch and protein within the grains [\u003cspan citationid=\"CR37\" class=\"CitationRef\"\u003e37\u003c/span\u003e].\u003c/p\u003e\u003cp\u003e\u003cb\u003eFunctional validation of\u003c/b\u003e \u003cb\u003eTaYABBY4A\u003c/b\u003e \u003cb\u003eoverexpression in\u003c/b\u003e \u003cb\u003eArabidopsis thaliana\u003c/b\u003e\u003c/p\u003e\u003cp\u003e\u003cem\u003eYABBY\u003c/em\u003e play multiple roles in plant growth and development. In the CRC subfamily of rice, OsDL exhibits high expression in pistils [\u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e]. Gossypium hirsutum GhYABBY6_Dt is primarily expressed specifically in pistils (carpels) and also shows high expression in cotyledons [\u003cspan citationid=\"CR39\" class=\"CitationRef\"\u003e39\u003c/span\u003e]. Most YABBY in Panicum virgatum, including \u003cem\u003ePvYABBY13\u003c/em\u003e, \u003cem\u003ePvYABBY14\u003c/em\u003e, \u003cem\u003ePvYABBY15\u003c/em\u003e, and \u003cem\u003ePvYABBY16\u003c/em\u003e, display relatively high expression levels in seeds and inflorescence tissues [\u003cspan citationid=\"CR40\" class=\"CitationRef\"\u003e40\u003c/span\u003e]. In this study, a combined analysis using public databases and transcriptome data from our laboratory revealed that \u003cem\u003eTaYABBY4A\u003c/em\u003e is highly expressed in seeds and endosperm, indicating its significant role in the development of reproductive organs. Compared to the WT, overexpression of the \u003cem\u003eTaYABBY4A\u003c/em\u003e in Arabidopsis thaliana resulted in delayed flowering, as well as a reduced number and diameter of rosette leaves. Previous studies have shown that overexpression of wheat \u003cem\u003eTaYAB1\u003c/em\u003e and soybean \u003cem\u003eGmFILa\u003c/em\u003e in Arabidopsis thaliana also led to delayed flowering [\u003cspan citationid=\"CR41\" class=\"CitationRef\"\u003e41\u003c/span\u003e, \u003cspan citationid=\"CR42\" class=\"CitationRef\"\u003e42\u003c/span\u003e]. Overexpression of \u003cem\u003eVvYABBY4\u003c/em\u003e (a YAB2 member from Grapevine) in tomato caused plant dwarfing [\u003cspan citationid=\"CR14\" class=\"CitationRef\"\u003e14\u003c/span\u003e]. These results suggest that \u003cem\u003eYABBY\u003c/em\u003e gene family is involved in plant growth and development. Overexpression of \u003cem\u003eVvYABBY4\u003c/em\u003e in tomato significantly reduced the size of fruits and seeds[\u003cspan citationid=\"CR14\" class=\"CitationRef\"\u003e14\u003c/span\u003e]. Overexpression of \u003cem\u003eBpYAB2\u003c/em\u003e, \u003cem\u003eBpYAB3\u003c/em\u003e, and \u003cem\u003eBpYAB4\u003c/em\u003e from \u003cem\u003eBroussonetia papyrifera\u003c/em\u003e in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e also resulted in shorter siliques and smaller seeds [\u003cspan citationid=\"CR43\" class=\"CitationRef\"\u003e43\u003c/span\u003e]. In this study, overexpression of \u003cem\u003eTaYABBY4A\u003c/em\u003e reduced the length of siliques, as well as the length and diameter of seeds in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e, further verifying its role in seed development.\u003c/p\u003e"},{"header":"Conclusions","content":"\u003cp\u003eThis study systematically explored the \u003cem\u003eYABBY\u003c/em\u003e gene family in wheat and successfully identified 21 \u003cem\u003eTaYABBYs\u003c/em\u003e. These genes can be classified into five known subfamilies: FIL/YAB3, YAB2, CRC, INO, and YAB5. The researchers comprehensively analyzed the chromosomal localization, gene structure, evolutionary relationships, and expression patterns of these genes. During the polyploidization process, \u003cem\u003eTaYABBYs\u003c/em\u003e underwent tandem duplication and gene loss events, accompanied by purifying selection. By integrating RNA-seq and qRT-PCR analysis data, we initially explored the specific expression profiles of \u003cem\u003eTaYABBYs\u003c/em\u003e in grains. The overexpression of \u003cem\u003eTaYABBY4A\u003c/em\u003e in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e reduced the length of siliques and diameter of seeds. It confirmed that this gene played an important role in plant growth and development as well as grain endosperm development. The research results not only reveal the evolutionary characteristics of the \u003cem\u003eYABBY\u003c/em\u003e gene family in wheat grains and lay a foundation for polyploid analysis, but also provide a theoretical basis for in-depth exploration of the functions of \u003cem\u003eTaYABBYs\u003c/em\u003e in grains, as well as a scientific basis for further analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e.\u003c/p\u003e"},{"header":"Material and methods","content":"\u003cdiv id=\"Sec13\" class=\"Section2\"\u003e\u003ch2\u003ePlant materials\u003c/h2\u003e\u003cp\u003eThe Wheat Research Institute at Shanxi Agricultural University supplied the wheat varieties (Yaomai 36, Pinyu 8175, Pinyu 8155, and Yaomai 30 for the experiment. These varieties were planted at the Hancun Experimental Base of the Wheat Research Institute of Shanxi Agricultural University (36\u0026deg;13.2\u0026rsquo; N, 111\u0026deg;33.7\u0026rsquo; E) during the 2023\u0026ndash;2024 growing season. Each variety occupied a plot measuring 36 meters in length and 10 meters in width. Wheat ears that blossomed simultaneously were tagged, and grains were harvested at three distinct phases of the grain-filling period: the milk-ripe stage (approximately 10 days post-flowering, MRS), the dough stage (approximately 20 days post-flowering, DP), and the wax-ripe stage (approximately 25 days post-flowering, WRS)[\u003cspan citationid=\"CR23\" class=\"CitationRef\"\u003e23\u003c/span\u003e]. The collected samples were promptly submerged in liquid nitrogen and preserved at -80℃ for subsequent RNA-Seq and qRT-PCR analyses.\u003c/p\u003e\u003cp\u003eThe wild-type Arabidopsis thaliana (Columbia-0, Col-0) was preserved by Professor Nie Xiaojun's laboratory at the state key laboratory for crop stress resistance and high-efficiency production at Northwest A\u0026amp;F University. In the greenhouse of the Wheat Research Institute at Shanxi Agricultural University, wild-type Arabidopsis thaliana and overexpression lines were planted in a mixture of black soil, vermiculite, and perlite. Initially, they were grown at 25\u0026deg;C under an 8-hour day/16-hour night photoperiod for 30 days. Subsequently, the growth continued at 25\u0026deg;C under a 16-hour day/8-hour night photoperiod until they reached 60 days. At the 30-day cultivation mark, rosette leaves from various overexpression lines were collected, immediately frozen in liquid nitrogen, and stored at -80\u0026deg;C to determine the expression level of \u003cem\u003eTaYABBY4A\u003c/em\u003e.\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec14\" class=\"Section2\"\u003e\u003ch2\u003eIdentification of \u003cem\u003eYABBYs\u003c/em\u003e\u003c/h2\u003e\u003cp\u003eFirstly, the genome information for Chinese Spring (IWGSC v2.1) was downloaded from the JGI website (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://phytozome-next.jgi.doe.gov/\u003c/span\u003e\u003cspan address=\"https://phytozome-next.jgi.doe.gov/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e) by searching for the target species within the Chinese Spring database[\u003cspan citationid=\"CR44\" class=\"CitationRef\"\u003e44\u003c/span\u003e, \u003cspan citationid=\"CR45\" class=\"CitationRef\"\u003e45\u003c/span\u003e]. The protein sequences for YABBY in Arabidopsis were obtained from the database TAIR10 (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://www.arabidopsis.org/\u003c/span\u003e\u003cspan address=\"https://www.arabidopsis.org/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e)[\u003cspan citationid=\"CR44\" class=\"CitationRef\"\u003e44\u003c/span\u003e]. The YABBY domain (PF04690) was obtained and downloaded from PFAM (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://pfam.xfam.org/\u003c/span\u003e\u003cspan address=\"https://pfam.xfam.org/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e) for the construction of a Hidden Markov Model (HMM)[\u003cspan citationid=\"CR46\" class=\"CitationRef\"\u003e46\u003c/span\u003e]. TaYABBYs were identified with an E-value\u0026thinsp;\u0026lt;\u0026thinsp;0.01 by using HMMER3.0 [\u003cspan citationid=\"CR47\" class=\"CitationRef\"\u003e47\u003c/span\u003e]. Transcripts from Phytozome (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://phytozome.jgi.doe.gov/pz/portal.html\u003c/span\u003e\u003cspan address=\"https://phytozome.jgi.doe.gov/pz/portal.html\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e) were filtered to retain only the primary ones[\u003cspan citationid=\"CR48\" class=\"CitationRef\"\u003e48\u003c/span\u003e]. TBtools[\u003cspan citationid=\"CR49\" class=\"CitationRef\"\u003e49\u003c/span\u003e] was utilized to extract \u003cem\u003eTaYABBY\u003c/em\u003e sequences from the Chinese Spring database and to optimize the data. The fundamental physical and chemical properties, such as amino acid length (in base pairs), molecular weight (MW), and isoelectric point (pI), were analyzed using ExPASy-ProtParam (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://web.expasy.org/protparam/\u003c/span\u003e\u003cspan address=\"https://web.expasy.org/protparam/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e)[\u003cspan citationid=\"CR50\" class=\"CitationRef\"\u003e50\u003c/span\u003e]. Gene chromosomal locations were determined using Phytozome, and subcellular localization was predicted using Plant-mPLoc (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttp://www.csbio.sjtu.edu.cn/bioinf/plant/\u003c/span\u003e\u003cspan address=\"http://www.csbio.sjtu.edu.cn/bioinf/plant/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e)[\u003cspan citationid=\"CR51\" class=\"CitationRef\"\u003e51\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec15\" class=\"Section2\"\u003e\u003ch2\u003eConserved domains, phylogenetic tree construction, and chromosomal location\u003c/h2\u003e\u003cp\u003eTo analyze the evolutionary characteristics of \u003cem\u003eTaYABBYs\u003c/em\u003e and their phylogenetic relationships among Arabidopsis, rice, and wheat, we conducted a series of bioinformatics analyses. First, multiple sequence alignments of TaYABBYs were performed using MEGA [\u003cspan citationid=\"CR64\" class=\"CitationRef\"\u003e64\u003c/span\u003e], and the results were visualized with Jalview 2.11.3.2[\u003cspan citationid=\"CR52\" class=\"CitationRef\"\u003e52\u003c/span\u003e] to identify conserved regions. Second, YABBY sequences of \u003cem\u003eOryza sativa\u003c/em\u003e and \u003cem\u003eArabidopsis thaliana\u003c/em\u003e were obtained from PlantTFDB (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttp://planttfdb.gao-lab.org/index.php\u003c/span\u003e\u003cspan address=\"http://planttfdb.gao-lab.org/index.php\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e)[\u003cspan citationid=\"CR53\" class=\"CitationRef\"\u003e53\u003c/span\u003e], and a phylogenetic tree was constructed via the Neighbor-Joining (NJ) method in ClustalW program with a 1000-replication bootstrap value [\u003cspan citationid=\"CR54\" class=\"CitationRef\"\u003e54\u003c/span\u003e], then visualized and classified on iTOL (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://itol.embl.de\u003c/span\u003e\u003cspan address=\"https://itol.embl.de\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e)[\u003cspan citationid=\"CR55\" class=\"CitationRef\"\u003e55\u003c/span\u003e]. Finally, TBtools was utilized to visualize the chromosomal localization of \u003cem\u003eTaYABBYs\u003c/em\u003e, facilitating an understanding of their genomic organization.\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec16\" class=\"Section2\"\u003e\u003ch2\u003eGene structure and conserved motif prediction\u003c/h2\u003e\u003cp\u003eThe gene structures of \u003cem\u003eTaYABBYs\u003c/em\u003e were analyzed using the GFF annotation file obtained from the wheat Genome Database. Motifs of the TaYABBYs were identified using MEME\u0026rsquo;s online tools (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttp://meme-suite.org/tools/meme/\u003c/span\u003e\u003cspan address=\"http://meme-suite.org/tools/meme/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e). The number of motifs was set to 10. The structure view was drawn using TBtools.[\u003cspan citationid=\"CR56\" class=\"CitationRef\"\u003e56\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec17\" class=\"Section2\"\u003e\u003ch2\u003eCollinearity analysis\u003c/h2\u003e\u003cp\u003eCollinearity analysis of \u003cem\u003eTaYABBYs\u003c/em\u003e was conducted, and a Circos diagram was generated using the Multiple Collinear Scan Toolkit X (MCScanX) plugin in TBtools[\u003cspan citationid=\"CR57\" class=\"CitationRef\"\u003e57\u003c/span\u003e]. The CDS of TaYABBYs were aligned using the BLAST online website(\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://blast.ncbi.nlm.nih.gov/Blast.cgi)i\u003c/span\u003e\u003cspan address=\"https://blast.ncbi.nlm.nih.gov/Blast.cgi)i\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003en NCBI[\u003cspan citationid=\"CR58\" class=\"CitationRef\"\u003e58\u003c/span\u003e]. The Ka/Ks Calculator in TBtools computed Ka, Ks, and Ka/Ks ratios for pairs, proteins, and CDS of \u003cem\u003eYABBYs\u003c/em\u003e[\u003cspan citationid=\"CR59\" class=\"CitationRef\"\u003e59\u003c/span\u003e]. BLAST was used to analyze gene-pair homology. The collinearity among wheat, rice, and Arabidopsis was analyzed and visualized using the Multiple Synteny Plot plug-in of TBtools.\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec18\" class=\"Section2\"\u003e\u003ch2\u003eAnalysis of cis-acting elements in promoter regions\u003c/h2\u003e\u003cp\u003eTBtools software was utilized to obtain the 2000 bp sequence upstream of the CDS of \u003cem\u003eTaYABBYs\u003c/em\u003e. This sequence was then submitted to Plant-Care (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttps://bioinformatics.psb.ugent.be/webtools/plantcare/html/\u003c/span\u003e\u003cspan address=\"https://bioinformatics.psb.ugent.be/webtools/plantcare/html/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e) for the prediction of promoter \u003cem\u003ecis\u003c/em\u003e-acting elements[\u003cspan citationid=\"CR60\" class=\"CitationRef\"\u003e60\u003c/span\u003e]. Data processing was conducted using Excel, and visualization was performed with TBtools.\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec19\" class=\"Section2\"\u003e\u003ch2\u003eHaplotype analysis\u003c/h2\u003e\u003cp\u003eBased on the whole-genome resequencing data of wheat from LuFei[\u003cspan citationid=\"CR61\" class=\"CitationRef\"\u003e61\u003c/span\u003e], SNPs of \u003cem\u003eTaYABBYs\u003c/em\u003e were extracted in accordance with the chromosomal positions of the genes. The re-sequenced wheat materials were categorized into various haplotypes based on the SNP differences.\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec20\" class=\"Section2\"\u003e\u003ch2\u003eGene expression pattern analysis of wheat\u003c/h2\u003e\u003cp\u003eTo investigate the expression patterns of \u003cem\u003eTaYABBYs\u003c/em\u003e, transcriptome data from various tissues and endosperm development stages were obtained from the publicly accessible Triticum aestivum transcriptome database (\u003cspan class=\"ExternalRef\"\u003e\u003cspan class=\"RefSource\"\u003ehttp://ipf.sustech.edu.cn/pub/wheatrna/\u003c/span\u003e\u003cspan address=\"http://ipf.sustech.edu.cn/pub/wheatrna/\" targettype=\"URL\" class=\"RefTarget\"\u003e\u003c/span\u003e\u003c/span\u003e). Concurrently, grains from four different varieties at the grain-filling stage were submitted to Beijing Tsingke Biotech Co.,Ltd for transcriptome sequencing. The expression patterns of \u003cem\u003eTaYABBYs\u003c/em\u003e were then visualized on a heatmap using TBtools[\u003cspan citationid=\"CR62\" class=\"CitationRef\"\u003e62\u003c/span\u003e, \u003cspan citationid=\"CR63\" class=\"CitationRef\"\u003e63\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec21\" class=\"Section2\"\u003e\u003ch2\u003ecDNA synthesis and quantitative real-time PCR\u003c/h2\u003e\u003cp\u003eIn gene expression analysis, RNA samples obtained from transcriptome sequencing were used to verify the accuracy of the transcriptome data. For the analysis of expression levels in overexpression lines, total RNA was extracted from previously collected rosette leaf samples using the Plant Total RNA Extraction Kit (TSINGKE TSP0201). Subsequently, cDNA was synthesized using the TaKaRa reverse transcription kit. Using \u003cem\u003eTaActin\u003c/em\u003e as the internal reference gene and SYBR Green I as the fluorescent dye, the expression levels in four wheat varieties and ten transgenic lines were quantitatively detected on the Applied Biosystems 7500 Real-Time PCR System (Thermo, Waltham, Massachusetts, USA). All reactions were set up with three technical replicates. The quantitative PCR primers were designed using Primer 5 software, and the specific sequences are detailed in Table S4. The relative gene expression levels were calculated using the 2\u003csup\u003e⁻∆∆CT\u003c/sup\u003e method[\u003cspan citationid=\"CR64\" class=\"CitationRef\"\u003e64\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec22\" class=\"Section2\"\u003e\u003ch2\u003eVector construction and plant transformation\u003c/h2\u003e\u003cp\u003eThe full-length coding sequence of \u003cem\u003eTaYABBY4A\u003c/em\u003e was cloned into the pROKII vector, which contains the CaMV35S promoter. The resulting recombinant plasmid was introduced into the Agrobacterium tumefaciens strain EHA105 and subsequently used to transform \u003cem\u003eArabidopsis thaliana\u003c/em\u003e (Col-0) via the floral dip method.[\u003cspan citationid=\"CR65\" class=\"CitationRef\"\u003e65\u003c/span\u003e]. The transgenic Arabidopsis lines were selected on 1/2 MS medium supplemented with Kanamycin (Phyto Tech, K378, USA, 50 mg/L).\u003c/p\u003e\u003cdiv id=\"Sec23\" class=\"Section3\"\u003e\u003ch2\u003eSubcellular localization and transcriptional auto-activation assay\u003c/h2\u003e\u003cp\u003eThe CDS sequences of \u003cem\u003eTaYABBY4A\u003c/em\u003e, with their stop codons removed, were cloned using KOD FX Neo (TOYOBO, KFX-201, Japan). The \u003cem\u003eTaYABBY4A\u003c/em\u003e was then integrated into the N-terminal GFP of the pFGC-eGFP vectors using the \u003cem\u003eTrelief\u003c/em\u003e\u003csup\u003eTM\u003c/sup\u003eSoSoo Cloning Kit Ver.2 (Tsingke, TSV-S3, Beijing, China). A single restriction site, \u003cem\u003eBamH\u003c/em\u003e I, was used to construct the vector, and the primers are listed in Table S4. The fusion constructs were introduced into onion epidermal cells via particle bombardment (GJ-1000). Subsequently, these constructs were observed under a confocal laser scanning microscope (Zeiss LSM 800, Wetzlar, Germany).\u003c/p\u003e\u003cp\u003eThe transcriptional activation activity of TaYABBY4A was confirmed using the yeast two-hybrid system. Initially, the CDS of TaYABBY4A was amplified (Table S4) to construct the recombinant vector pGBKT7-TaYABBY4A. The pGBKT7-TaYABBY4A, along with the positive control pGBKT7-PtrWOX13A and the negative control, the empty pGBKT7 vector, were individually transformed into Y2H-Gold yeast cells. The transformed Y2H-Gold yeast cells were then plated onto SD/-Trp (growth control), SD/-Trp/-His/-Ade, and X-α-gal media and cultured at 30\u0026deg;C for 3\u0026ndash;5 days to assess their transcriptional activation activity[\u003cspan citationid=\"CR66\" class=\"CitationRef\"\u003e66\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003c/div\u003e\u003cdiv id=\"Sec24\" class=\"Section2\"\u003e\u003ch2\u003ePhenotypic characterization of overexpression lines\u003c/h2\u003e\u003cp\u003eThe bolting and flowering times of WT, OE3, and OE5 plants grown for 25, 28, and 50 days were recorded. Furthermore, a ruler was utilized to measure the diameter of the rosette leaves. Siliques and seeds from Arabidopsis were randomly chosen, and their lengths, along with the diameter of the seeds, were measured using ImageJ 1.53[\u003cspan citationid=\"CR67\" class=\"CitationRef\"\u003e67\u003c/span\u003e].\u003c/p\u003e\u003c/div\u003e\u003cdiv id=\"Sec25\" class=\"Section2\"\u003e\u003ch2\u003eStatistical analysis\u003c/h2\u003e\u003cp\u003eThe experimental data were analyzed using Microsoft Excel 2021 and SPSS 22.0. Significant differences among the various comparisons were determined using Duncan's multiple range test and visualized with GraphPad Prism 10.\u003c/p\u003e\u003c/div\u003e"},{"header":"Declarations","content":"\u003cp\u003e\u003cstrong\u003eEthics approval and consent to participate\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eNot applicable.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eConsent for publication\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eNot applicable.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAvailability of Data and Materials\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe genomics information for Chinese Spring wheat (IWGSC v2.1) was obtained from the Joint Genome Institute\u0026apos;s website (https://phytozome-next.jgi.doe.gov/). The protein sequences of YABBY in rice and Arabidopsis were retrieved from the Plant Transcription Factor Database (http://planttfdb.gao-lab.org/index.php). The haplotypes of \u003cem\u003eTaYABBYs\u003c/em\u003e were extracted based on the chromosomal positions of the genes, using whole-genome re-sequencing data of wheat from Lufei (http://wheat.cau.edu.cn/WheatUnion/b_4/). FPKM values from various wheat organizations were downloaded from the database website (http://ipf.sustech.edu.cn/pub/wheatrna/). Data is provided within the manuscript or in supplementary information files.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eCompeting Interests\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe authors declare that they have no competing interests.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eFunding\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThis work were supported by the Major Project on Agricultural Bio-breeding of China (2023ZD04026) and Open Project Program of State Key Laboratory for Crop Stress Resistance and High-Efficiency Production (SKLCSRHPKF2025016) as well as China Agriculture Research System (Wheat, CARS-03-54) and the Project of Science and Technology Innovation Fund of Shanxi Agricultural University (2023BQ40).\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAuthor\u0026rsquo;s Contributions\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eY.J. and X.L. performed the formal data collection and analyses, as well as preparing the original draft of the manuscript. X.M., R.G. participated in the RNA-seq analysis and qRT-PCR analysis. H.J., Y.Z., and X.N. conceived and designed the study, Y.Z., and X.N. obtained funds, and critically reviewed the final draft of the manuscript. All authors have read and agreed to the published version of the manuscript.\u003c/p\u003e"},{"header":"References","content":"\u003col\u003e\n\u003cli\u003eTanaka W, Toriba T, Hirano HY: \u003cstrong\u003eThree TOB1-related YABBY genes are required to maintain proper function of the spikelet and branch meristems in rice\u003c/strong\u003e. \u003cem\u003eNew Phytol \u003c/em\u003e2017, \u003cstrong\u003e215\u003c/strong\u003e(2):825-839.\u003c/li\u003e\n\u003cli\u003eBowman JL, Smyth DR: \u003cstrong\u003eCRABS CLAW, a gene that regulates carpel and nectary development in Arabidopsis, encodes a novel protein with zinc finger and helix-loop-helix domains\u003c/strong\u003e. \u003cem\u003eDevelopment \u003c/em\u003e1999,\u003cstrong\u003e 126\u003c/strong\u003e(11):2387-2396.\u003c/li\u003e\n\u003cli\u003eGoldshmidt A, Alvarez JP, Bowman JL, Eshed Y: \u003cstrong\u003eSignals derived from YABBY gene activities in organ primordia regulate growth and partitioning of Arabidopsis shoot apical meristems\u003c/strong\u003e. \u003cem\u003ePlant Cell \u003c/em\u003e2008, \u003cstrong\u003e20\u003c/strong\u003e(5):1217-1230.\u003c/li\u003e\n\u003cli\u003eStahle MI, Kuehlich J, Staron L, von Arnim AG, Golz JF: \u003cstrong\u003eYABBYs and the transcriptional corepressors LEUNIG and LEUNIG_HOMOLOG maintain leaf polarity and meristem activity in Arabidopsis\u003c/strong\u003e. \u003cem\u003ePlant Cell \u003c/em\u003e2009, \u003cstrong\u003e21\u003c/strong\u003e(10):3105-3118.\u003c/li\u003e\n\u003cli\u003eShinichiro Sawa TI, Yoshiro Shimura, and Kiyotaka Okada: \u003cstrong\u003eFILAMENTOUS FLOWER Controls the Formation and Development of Arabidopsis Inflorescences and Floral Meristems\u003c/strong\u003e. \u003cem\u003eThe Plant Cell \u003c/em\u003e1999, \u003cstrong\u003e11\u003c/strong\u003e:69-86.\u003c/li\u003e\n\u003cli\u003eHan K, Lai M, Zhao T, Yang X, An X, Chen Z: \u003cstrong\u003ePlant YABBY transcription factors: a review of gene expression, biological functions, and prospects\u003c/strong\u003e. \u003cem\u003eCritical Reviews in Biotechnology \u003c/em\u003e2024:1-22.\u003c/li\u003e\n\u003cli\u003eGuan J, Wang Z, Liu S, Kong X, Wang F, Sun G, Geng S, Mao L, Zhou P, Li A: \u003cstrong\u003eTranscriptome Analysis of Developing Wheat Grains at Rapid Expanding Phase Reveals Dynamic Gene Expression Patterns\u003c/strong\u003e. \u003cem\u003eBiology \u003c/em\u003e2022, \u003cstrong\u003e11\u003c/strong\u003e(2):281.\u003c/li\u003e\n\u003cli\u003eHao L, Zhang J, Shi S, Li P, Li D, Zhang T, Guo H: \u003cstrong\u003eIdentification and expression profiles of the YABBY transcription factors in wheat\u003c/strong\u003e. \u003cem\u003ePeerJ \u003c/em\u003e2022, \u003cstrong\u003e10\u003c/strong\u003e:e12855.\u003c/li\u003e\n\u003cli\u003eToriba T, Harada K, Takamura A, Nakamura H, Ichikawa H, Suzaki T, Hirano HY: \u003cstrong\u003eMolecular characterization the YABBY gene family in Oryza sativa and expression analysis of OsYABBY1\u003c/strong\u003e. \u003cem\u003eMol Genet Genomics \u003c/em\u003e2007, \u003cstrong\u003e277\u003c/strong\u003e(5):457-468.\u003c/li\u003e\n\u003cli\u003eZhao SP, Lu D, Yu TF, Ji YJ, Zheng WJ, Zhang SX, Chai SC, Chen ZY, Cui XY: \u003cstrong\u003eGenome-wide analysis of the YABBY family in soybean and functional identification of GmYABBY10 involvement in high salt and drought stresses\u003c/strong\u003e. \u003cem\u003ePlant physiology and biochemistry : PPB \u003c/em\u003e2017, \u003cstrong\u003e119\u003c/strong\u003e:132-146.\u003c/li\u003e\n\u003cli\u003eZhang S, Wang L, Sun X, Li Y, Yao J, Nocker SV, Wang X: \u003cstrong\u003eGenome-Wide Analysis of the YABBY Gene Family in Grapevine and Functional Characterization of VvYABBY4\u003c/strong\u003e. \u003cem\u003eFrontiers in Plant Science \u003c/em\u003e2019, \u003cstrong\u003e10\u003c/strong\u003e.\u003c/li\u003e\n\u003cli\u003eHuang Z, Van Houten J, Gonzalez G, Xiao H, van der Knaap E: \u003cstrong\u003eGenome-wide identification, phylogeny and expression analysis of SUN, OFP and YABBY gene family in tomato\u003c/strong\u003e. \u003cem\u003eMol Genet Genomics \u003c/em\u003e2013, \u003cstrong\u003e288\u003c/strong\u003e(3-4):111-129.\u003c/li\u003e\n\u003cli\u003eZhang T, Wu A, Hu X, Deng Q, Ma Z, Su L: \u003cstrong\u003eComprehensive study of rice YABBY gene family: evolution, expression and interacting proteins analysis\u003c/strong\u003e. \u003cem\u003ePeerJ \u003c/em\u003e2023, \u003cstrong\u003e11\u003c/strong\u003e:e14783.\u003c/li\u003e\n\u003cli\u003eZhang S, Wang L, Sun X, Li Y, Yao J, van Nocker S, Wang X: \u003cstrong\u003eGenome-Wide Analysis of the YABBY Gene Family in Grapevine and Functional Characterization of VvYABBY4\u003c/strong\u003e. \u003cem\u003eFront Plant Sci \u003c/em\u003e2019, \u003cstrong\u003e10\u003c/strong\u003e:1207.\u003c/li\u003e\n\u003cli\u003eOrashakova S, Lange M, Lange S, Wege S, Becker A: \u003cstrong\u003eThe CRABS CLAW ortholog from California poppy (Eschscholzia californica, Papaveraceae), EcCRC, is involved in floral meristem termination, gynoecium differentiation and ovule initiation\u003c/strong\u003e. \u003cem\u003ePlant J \u003c/em\u003e2009, \u003cstrong\u003e58\u003c/strong\u003e(4):682-693.\u003c/li\u003e\n\u003cli\u003eYang Z, Gong Q, Wang L, Jin Y, Xi J, Li Z, Qin W, Yang Z, Lu L, Chen Q\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-Wide Study of YABBY Genes in Upland Cotton and Their Expression Patterns under Different Stresses\u003c/strong\u003e. \u003cem\u003eFront Genet \u003c/em\u003e2018, \u003cstrong\u003e9\u003c/strong\u003e:33.\u003c/li\u003e\n\u003cli\u003eGuo J, Zhou X-t, Dai K-l, Yuan X-y, Guo P-y, Shi W-p, Zhou M-x: \u003cstrong\u003eComprehensive analysis of YABBY gene family in foxtail millet (Setaria italica) and functional characterization of SiDL\u003c/strong\u003e. \u003cem\u003eJournal of Integrative Agriculture \u003c/em\u003e2022, \u003cstrong\u003e21\u003c/strong\u003e(10):2876-2887.\u003c/li\u003e\n\u003cli\u003eZhang T, Li C, Li D, Liu Y, Yang X: \u003cstrong\u003eRoles of YABBY transcription factors in the modulation of morphogenesis, development, and phytohormone and stress responses in plants\u003c/strong\u003e. \u003cem\u003eJournal of Plant Research \u003c/em\u003e2020, \u003cstrong\u003e133\u003c/strong\u003e(6):751-763.\u003c/li\u003e\n\u003cli\u003eJuliana P, Poland J, Huerta-Espino J, Shrestha S, Crossa J, Crespo-Herrera L, Toledo FH, Govindan V, Mondal S, Kumar U\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eImproving grain yield, stress resilience and quality of bread wheat using large-scale genomics\u003c/strong\u003e. \u003cem\u003eNature Genetics \u003c/em\u003e2019, \u003cstrong\u003e51\u003c/strong\u003e(10):1530-1539.\u003c/li\u003e\n\u003cli\u003eHussain M, Javed MM, Sami A, Shafiq M, Ali Q, Mazhar HS, Tabassum J, Javed MA, Haider MZ, Hussain M\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-wide analysis of plant specific YABBY transcription factor gene family in carrot (Dacus carota) and its comparison with Arabidopsis\u003c/strong\u003e. \u003cem\u003eBMC Genom Data \u003c/em\u003e2024, \u003cstrong\u003e25\u003c/strong\u003e(1):26.\u003c/li\u003e\n\u003cli\u003eYang T, He Y, Niu S, Zhang Y: \u003cstrong\u003eA YABBY gene CRABS CLAW a (CRCa) negatively regulates flower and fruit sizes in tomato\u003c/strong\u003e. \u003cem\u003ePlant science : an international journal of experimental plant biology \u003c/em\u003e2022, \u003cstrong\u003e320\u003c/strong\u003e:111285.\u003c/li\u003e\n\u003cli\u003eLuo K, Zhang D, Zhai Z, Liu X, Zhou J, Zhang B, Li D: \u003cstrong\u003eGenome-Wide Analysis of YABBY Gene Family in Lettuce (Lactuca sativa) and Functional Characterization of LsaFILd\u003c/strong\u003e. \u003cem\u003eJournal of Plant Growth Regulation \u003c/em\u003e2023, \u003cstrong\u003e42\u003c/strong\u003e(4):2124-2135.\u003c/li\u003e\n\u003cli\u003eZhang Y, Xu Y, Mao Y, Tan X, Tian Y, Ma X, Ji H, Zhang D: \u003cstrong\u003eGenome-Wide Identification and Expression Analysis of NF-YA Gene Family in the Filling Stage of Wheat (Triticum aestivum L.)\u003c/strong\u003e. \u003cem\u003eInternational Journal of Molecular Sciences \u003c/em\u003e2024, \u003cstrong\u003e26\u003c/strong\u003e:133.\u003c/li\u003e\n\u003cli\u003eLi C, Dong N, Shen L, Lu M, Zhai J, Zhao Y, Chen L, Wan Z, Liu Z, Ren H\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-wide identification and expression profile of YABBY genes in Averrhoa carambola\u003c/strong\u003e. \u003cem\u003ePeerJ \u003c/em\u003e2022, \u003cstrong\u003e9\u003c/strong\u003e:e12558.\u003c/li\u003e\n\u003cli\u003eZhao S-P, Lu D, Yu T-F, Ji Y-J, Zheng W-J, Zhang S-X, Chai S-C, Chen Z-Y, Cui X-Y: \u003cstrong\u003eGenome-wide analysis of the YABBY family in soybean and functional identification of GmYABBY10 involvement in high salt and drought stresses\u003c/strong\u003e. \u003cem\u003ePlant Physiology and Biochemistry \u003c/em\u003e2017, \u003cstrong\u003e119\u003c/strong\u003e:132-146.\u003c/li\u003e\n\u003cli\u003eYin S, Li S, Gao Y, Bartholomew ES, Wang R, Yang H, Liu C, Chen X, Wang Y, Liu X\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-Wide Identification of YABBY Gene Family in Cucurbitaceae and Expression Analysis in Cucumber (Cucumis sativus L.)\u003c/strong\u003e. \u003cem\u003eGenes (Basel) \u003c/em\u003e2022, \u003cstrong\u003e13\u003c/strong\u003e(3).\u003c/li\u003e\n\u003cli\u003eWang W, Ma J, Liu H, Wang Z, Nan R, Zhong T, Sun M, Wang S, Yao Y, Sun F\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-wide analysis of the switchgrass YABBY family and functional characterization of PvYABBY14 in response to ABA and GA stress in Arabidopsis\u003c/strong\u003e. \u003cem\u003eBMC Plant Biology \u003c/em\u003e2024, \u003cstrong\u003e24\u003c/strong\u003e(1):114.\u003c/li\u003e\n\u003cli\u003eBowman JL, Smyth DR, Meyerowitz EM: \u003cstrong\u003eGenes directing flower development in Arabidopsis\u003c/strong\u003e. \u003cem\u003ePlant Cell \u003c/em\u003e1989, \u003cstrong\u003e1\u003c/strong\u003e(1):37-52.\u003c/li\u003e\n\u003cli\u003eLiu H, Ye H, Wang J, Chen S, Li M, Wang G, Hou N, Zhao P: \u003cstrong\u003eGenome-Wide Identification and Characterization of YABBY Gene Family in Juglans regia and Juglans mandshurica\u003c/strong\u003e. 2022, \u003cstrong\u003e12\u003c/strong\u003e(8):1914.\u003c/li\u003e\n\u003cli\u003eAppels R, Eversole K, Stein N, Feuillet C, Keller B, Rogers J, Pozniak CJ, Choulet F, Distelfeld A, Poland J\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eShifting the limits in wheat research and breeding using a fully annotated reference genome\u003c/strong\u003e. \u003cem\u003eScience \u003c/em\u003e2018, \u003cstrong\u003e361\u003c/strong\u003e(6403):eaar7191.\u003c/li\u003e\n\u003cli\u003eJiao C, Xie X, Hao C, Chen L, Xie Y, Garg V, Zhao L, Wang Z, Zhang Y, Li T\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003ePan-genome bridges wheat structural variations with habitat and breeding\u003c/strong\u003e. \u003cem\u003eNature \u003c/em\u003e2025, \u003cstrong\u003e637\u003c/strong\u003e(8045):384-393.\u003c/li\u003e\n\u003cli\u003eZhang Z, Qu J, Li F, Li S, Xu S, Zhang R, Xue J, Guo D: \u003cstrong\u003eGenome-wide evolutionary characterization and expression analysis of SIAMESE-RELATED family genes in maize\u003c/strong\u003e. \u003cem\u003eBMC Evolutionary Biology \u003c/em\u003e2020, \u003cstrong\u003e20\u003c/strong\u003e(1):91.\u003c/li\u003e\n\u003cli\u003eZheng Q, Zhao X, Huang Y, Zhang MM, He X, Ke S, Li Y, Zhang C, Ahmad S, Lan S\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-Wide Identification of the YABBY Gene Family in Dendrobium Orchids and Its Expression Patterns in Dendrobium chrysotoxum\u003c/strong\u003e. \u003cem\u003eInt J Mol Sci \u003c/em\u003e2023, \u003cstrong\u003e24\u003c/strong\u003e(12).\u003c/li\u003e\n\u003cli\u003eBowman JL: \u003cstrong\u003eThe YABBY gene family and abaxial cell fate\u003c/strong\u003e. \u003cem\u003eCurrent opinion in plant biology \u003c/em\u003e2000, \u003cstrong\u003e3\u003c/strong\u003e(1):17-22.\u003c/li\u003e\n\u003cli\u003eZhao Y, Liu C, Ge D, Yan M, Ren Y, Huang X, Yuan Z: \u003cstrong\u003eGenome-wide identification and expression of YABBY genes family during flower development in Punica granatum L\u003c/strong\u003e. \u003cem\u003eGene \u003c/em\u003e2020, \u003cstrong\u003e752\u003c/strong\u003e:144784.\u003c/li\u003e\n\u003cli\u003eFinet C, Floyd SK, Conway SJ, Zhong B, Scutt CP, Bowman JL: \u003cstrong\u003eEvolution of the YABBY gene family in seed plants\u003c/strong\u003e. \u003cem\u003eEvolution \u0026amp; Development \u003c/em\u003e2016, \u003cstrong\u003e18\u003c/strong\u003e(2):116-126.\u003c/li\u003e\n\u003cli\u003eRabieyan E, Darvishzadeh R, Mohammadi R, Gul A, Rasheed A, Akhar FK, Abdi H, Alipour H: \u003cstrong\u003eGenetic diversity, linkage disequilibrium, and population structure of tetraploid wheat landraces originating from Europe and Asia\u003c/strong\u003e. \u003cem\u003eBMC genomics \u003c/em\u003e2023, \u003cstrong\u003e24\u003c/strong\u003e(1):682.\u003c/li\u003e\n\u003cli\u003eSiegfried KR, Eshed Y, Baum SF, Otsuga D, Drews GN, Bowman JL: \u003cstrong\u003eMembers of the YABBY gene family specify abaxial cell fate in Arabidopsis\u003c/strong\u003e. \u003cem\u003eDevelopment \u003c/em\u003e1999, \u003cstrong\u003e126\u003c/strong\u003e(18):4117-4128.\u003c/li\u003e\n\u003cli\u003eZhang X, Chen J, Yan Y, Yan X, Shi C, Zhao L, Chen F: \u003cstrong\u003eGenome-wide association study of heading and flowering dates and construction of its prediction equation in Chinese common wheat\u003c/strong\u003e. \u003cem\u003eTheor Appl Genet \u003c/em\u003e2018, \u003cstrong\u003e131\u003c/strong\u003e(11):2271-2285.\u003c/li\u003e\n\u003cli\u003eWang W, Ma J, Liu H, Wang Z, Nan R, Zhong T, Sun M, Wang S, Yao Y, Sun F\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eGenome-wide analysis of the switchgrass YABBY family and functional characterization of PvYABBY14 in response to ABA and GA stress in Arabidopsis\u003c/strong\u003e. \u003cem\u003eBMC Plant Biol \u003c/em\u003e2024, \u003cstrong\u003e24\u003c/strong\u003e(1):114.\u003c/li\u003e\n\u003cli\u003eZhao W, Su HY, Song J, Zhao XY, Zhang XS: \u003cstrong\u003eEctopic expression of TaYAB1, a member of YABBY gene family in wheat, causes the partial abaxialization of the adaxial epidermises of leaves and arrests the development of shoot apical meristem in Arabidopsis\u003c/strong\u003e. \u003cem\u003ePlant Science \u003c/em\u003e2006, \u003cstrong\u003e170\u003c/strong\u003e(2):364-371.\u003c/li\u003e\n\u003cli\u003eYang H, Shi G, Li X, Hu D, Cui Y, Hou J, Yu D, Huang F: \u003cstrong\u003eOverexpression of a soybean YABBY gene, GmFILa, causes leaf curling in Arabidopsis thaliana\u003c/strong\u003e. \u003cem\u003eBMC Plant Biology \u003c/em\u003e2019, \u003cstrong\u003e19\u003c/strong\u003e(1):234.\u003c/li\u003e\n\u003cli\u003eTang F, Zhang D, Chen N, Peng X, Shen S: \u003cstrong\u003eGenome-Wide Analysis of BpYABs and Function Identification Involving in the Leaf and Silique Development in Transgenic Arabidopsis\u003c/strong\u003e. \u003cem\u003eInt J Mol Sci \u003c/em\u003e2022, \u003cstrong\u003e23\u003c/strong\u003e(3).\u003c/li\u003e\n\u003cli\u003eLamesch P, Berardini TZ, Li D, Swarbreck D, Wilks C, Sasidharan R, Muller R, Dreher K, Alexander DL, Garcia-Hernandez M\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eThe Arabidopsis Information Resource (TAIR): improved gene annotation and new tools\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2011, \u003cstrong\u003e40\u003c/strong\u003e(D1):D1202-D1210.\u003c/li\u003e\n\u003cli\u003eLi S, Zhang C, Li J, Yan L, Wang N, Xia L: \u003cstrong\u003ePresent and future prospects for wheat improvement through genome editing and advanced technologies\u003c/strong\u003e. \u003cem\u003ePlant Communications \u003c/em\u003e2021, \u003cstrong\u003e2\u003c/strong\u003e(4).\u003c/li\u003e\n\u003cli\u003eFinn RD, Mistry J, Schuster-B\u0026ouml;ckler B, Griffiths-Jones S, Hollich V, Lassmann T, Moxon S, Marshall M, Khanna A, Durbin R\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003ePfam: clans, web tools and services\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2006, \u003cstrong\u003e34\u003c/strong\u003e(suppl_1):D247-D251.\u003c/li\u003e\n\u003cli\u003eFinn RD, Clements J, Eddy SR: \u003cstrong\u003eHMMER web server: interactive sequence similarity searching\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2011, \u003cstrong\u003e39\u003c/strong\u003e(suppl_2):W29-W37.\u003c/li\u003e\n\u003cli\u003eGoodstein DM, Shu S, Howson R, Neupane R, Hayes RD, Fazo J, Mitros T, Dirks W, Hellsten U, Putnam N\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003ePhytozome: a comparative platform for green plant genomics\u003c/strong\u003e. \u003cem\u003eNucleic Acids Res \u003c/em\u003e2012, \u003cstrong\u003e40\u003c/strong\u003e(Database issue):D1178-1186.\u003c/li\u003e\n\u003cli\u003eChen C, Chen H, Zhang Y, Thomas HR, Frank MH, He Y, Xia R: \u003cstrong\u003eTBtools: An Integrative Toolkit Developed for Interactive Analyses of Big Biological Data\u003c/strong\u003e. \u003cem\u003eMolecular Plant \u003c/em\u003e2020, \u003cstrong\u003e13\u003c/strong\u003e(8):1194-1202.\u003c/li\u003e\n\u003cli\u003eGasteiger E, Gattiker A, Hoogland C, Ivanyi I, Appel RD, Bairoch A: \u003cstrong\u003eExPASy: The proteomics server for in-depth protein knowledge and analysis\u003c/strong\u003e. \u003cem\u003eNucleic Acids Res \u003c/em\u003e2003, \u003cstrong\u003e31\u003c/strong\u003e(13):3784-3788.\u003c/li\u003e\n\u003cli\u003eChou KC, Shen HB: \u003cstrong\u003ePlant-mPLoc: a top-down strategy to augment the power for predicting plant protein subcellular localization\u003c/strong\u003e. \u003cem\u003ePLoS One \u003c/em\u003e2010, \u003cstrong\u003e5\u003c/strong\u003e(6):e11335.\u003c/li\u003e\n\u003cli\u003eWaterhouse AM, Procter JB, Martin DMA, Clamp M, Barton GJ: \u003cstrong\u003eJalview Version 2\u0026mdash;a multiple sequence alignment editor and analysis workbench\u003c/strong\u003e. \u003cem\u003eBioinformatics \u003c/em\u003e2009, \u003cstrong\u003e25\u003c/strong\u003e(9):1189-1191.\u003c/li\u003e\n\u003cli\u003eGuo A-Y, Chen X, Gao G, Zhang H, Zhu Q-H, Liu X-C, Zhong Y-F, Gu X, He K, Luo J: \u003cstrong\u003ePlantTFDB: a comprehensive plant transcription factor database\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2007, \u003cstrong\u003e36\u003c/strong\u003e(suppl_1):D966-D969.\u003c/li\u003e\n\u003cli\u003eHall BG: \u003cstrong\u003eBuilding Phylogenetic Trees from Molecular Data with MEGA\u003c/strong\u003e. \u003cem\u003eMolecular Biology and Evolution \u003c/em\u003e2013, \u003cstrong\u003e30\u003c/strong\u003e(5):1229-1235.\u003c/li\u003e\n\u003cli\u003eLetunic I, Bork P: \u003cstrong\u003eInteractive Tree Of Life (iTOL) v5: an online tool for phylogenetic tree display and annotation\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2021, \u003cstrong\u003e49\u003c/strong\u003e(W1):W293-W296.\u003c/li\u003e\n\u003cli\u003eBailey TL, Johnson J, Grant CE, Noble WS: \u003cstrong\u003eThe MEME Suite\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2015, \u003cstrong\u003e43\u003c/strong\u003e(W1):W39-W49.\u003c/li\u003e\n\u003cli\u003eWang Y, Tang H, DeBarry JD, Tan X, Li J, Wang X, Lee T-h, Jin H, Marler B, Guo H\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eMCScanX: a toolkit for detection and evolutionary analysis of gene synteny and collinearity\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2012, \u003cstrong\u003e40\u003c/strong\u003e(7):e49-e49.\u003c/li\u003e\n\u003cli\u003eAltschul SF, Gish W, Miller W, Myers EW, Lipman DJ: \u003cstrong\u003eBasic local alignment search tool\u003c/strong\u003e. \u003cem\u003eJournal of molecular biology \u003c/em\u003e1990, \u003cstrong\u003e215\u003c/strong\u003e(3):403-410.\u003c/li\u003e\n\u003cli\u003eZhang Z, Li J, Zhao XQ, Wang J, Wong GK, Yu J: \u003cstrong\u003eKaKs_Calculator: calculating Ka and Ks through model selection and model averaging\u003c/strong\u003e. \u003cem\u003eGenomics, proteomics \u0026amp; bioinformatics \u003c/em\u003e2006, \u003cstrong\u003e4\u003c/strong\u003e(4):259-263.\u003c/li\u003e\n\u003cli\u003eLescot M, D\u0026eacute;hais P, Thijs G, Marchal K, Moreau Y, Van de Peer Y, Rouz\u0026eacute; P, Rombauts S: \u003cstrong\u003ePlantCARE, a database of plant cis-acting regulatory elements and a portal to tools for in silico analysis of promoter sequences\u003c/strong\u003e. \u003cem\u003eNucleic Acids Research \u003c/em\u003e2002, \u003cstrong\u003e30\u003c/strong\u003e(1):325-327.\u003c/li\u003e\n\u003cli\u003eZhou Y, Zhao X, Li Y, Xu J, Bi A, Kang L, Xu D, Chen H, Wang Y, Wang Y-g\u003cem\u003e et al\u003c/em\u003e: \u003cstrong\u003eTriticum population sequencing provides insights into wheat adaptation\u003c/strong\u003e. \u003cem\u003eNature Genetics \u003c/em\u003e2020, \u003cstrong\u003e52\u003c/strong\u003e(12):1412-1422.\u003c/li\u003e\n\u003cli\u003eLevy AA, Feldman M: \u003cstrong\u003eEvolution and origin of bread wheat\u003c/strong\u003e. \u003cem\u003eThe Plant Cell \u003c/em\u003e2022, \u003cstrong\u003e34\u003c/strong\u003e(7):2549-2567.\u003c/li\u003e\n\u003cli\u003eYang J, Zhang B, Gu G, Yuan J, Shen S, Jin L, Lin Z, Lin J, Xie X: \u003cstrong\u003eGenome-wide identification and expression analysis of the R2R3-MYB gene family in tobacco (Nicotiana tabacum L.)\u003c/strong\u003e. \u003cem\u003eBMC genomics \u003c/em\u003e2022, \u003cstrong\u003e23\u003c/strong\u003e(1):432.\u003c/li\u003e\n\u003cli\u003eLivak KJ, Schmittgen TD: \u003cstrong\u003eAnalysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2\u0026minus;\u0026Delta;\u0026Delta;CT Method\u003c/strong\u003e. \u003cem\u003eMethods \u003c/em\u003e2001, \u003cstrong\u003e25\u003c/strong\u003e(4):402-408.\u003c/li\u003e\n\u003cli\u003eClough SJ, Bent AF: \u003cstrong\u003eFloral dip: a simplified method for Agrobacterium -mediated transformation of Arabidopsis thaliana\u003c/strong\u003e. \u003cem\u003eThe Plant Journal \u003c/em\u003e1998, \u003cstrong\u003e16\u003c/strong\u003e(6):735-743.\u003c/li\u003e\n\u003cli\u003eZhang Y, Liu Y, Wang X, Wang R, Chen X, Wang S, Wei H, Wei Z: \u003cstrong\u003ePtrWOX13A Promotes Wood Formation and Bioactive Gibberellins Biosynthesis in Populus trichocarpa\u003c/strong\u003e. \u003cem\u003eFront Plant Sci \u003c/em\u003e2022, \u003cstrong\u003e13\u003c/strong\u003e:835035.\u003c/li\u003e\n\u003cli\u003eRueden CT, Schindelin J, Hiner MC, DeZonia BE, Walter AE, Arena ET, Eliceiri KW: \u003cstrong\u003eImageJ2: ImageJ for the next generation of scientific image data\u003c/strong\u003e. \u003cem\u003eBMC Bioinformatics \u003c/em\u003e2017, \u003cstrong\u003e18\u003c/strong\u003e(1):529.\u003c/li\u003e\n\u003c/ol\u003e"},{"header":"Tables","content":"\u003cp\u003eTables 1 to 3 are available in the Supplementary Files section.\u003c/p\u003e"}],"fulltextSource":"","fullText":"","funders":[],"hasAdminPriorityOnWorkflow":false,"hasManuscriptDocX":true,"hasOptedInToPreprint":true,"hasPassedJournalQc":"","hasAnyPriority":false,"hideJournal":false,"highlight":"","institution":"","isAcceptedByJournal":true,"isAuthorSuppliedPdf":false,"isDeskRejected":"","isHiddenFromSearch":false,"isInQc":false,"isInWorkflow":false,"isPdf":false,"isPdfUpToDate":true,"isWithdrawnOrRetracted":false,"journal":{"display":true,"email":"[email protected]","identity":"bmc-plant-biology","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":false,"externalIdentity":"pbio","sideBox":"Learn more about [BMC Plant Biology](http://bmcplantbiol.biomedcentral.com/)","snPcode":"","submissionUrl":"https://www.editorialmanager.com/pbio/default.aspx","title":"BMC Plant Biology","twitterHandle":"BMC_series","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"em","reportingPortfolio":"BMC Series","inReviewEnabled":true,"inReviewRevisionsEnabled":true},"keywords":"wheat, YABBY gene family, bioinformatics analysis, functional characterization, plant development","lastPublishedDoi":"10.21203/rs.3.rs-7691254/v1","lastPublishedDoiUrl":"https://doi.org/10.21203/rs.3.rs-7691254/v1","license":{"name":"CC BY 4.0","url":"https://creativecommons.org/licenses/by/4.0/"},"manuscriptAbstract":"\u003ch2\u003eBackground\u003c/h2\u003e\u003cp\u003e\u003cem\u003eYABBYs\u003c/em\u003e are plant-specific transcription factors that play crucial roles in plant growth, development, and stress responses. Despite extensive studies in various plant species, a systematic analysis of \u003cem\u003eYABBYs\u003c/em\u003e in wheat grains is still lacking.\u003c/p\u003e\u003ch2\u003eResults\u003c/h2\u003e\u003cp\u003eIn this study, 21 \u003cem\u003eTaYABBYs\u003c/em\u003e were identified using the Chinese Spring wheat genome database and were divided into five subfamilies through phylogenetic analysis. Gene collinearity analysis revealed the evolutionary characteristics of the \u003cem\u003eTaYABBYs\u003c/em\u003e. Analysis of cis-acting elements in the promoter region identified elements related to endosperm development. SNP analysis uncovered genetic variations within the YABBY gene family. Meanwhile, RNA-Seq and qRT-PCR techniques were employed to explore the expression patterns of \u003cem\u003eTaYABBYs\u003c/em\u003e, and the results showed that these genes are differentially expressed in different wheat tissues. Additionally, we selected \u003cem\u003eTaYABBY4A\u003c/em\u003e from the CRC subfamily for overexpression in \u003cem\u003eArabidopsis thaliana\u003c/em\u003e to verify the function of \u003cem\u003eTaYABBY\u003c/em\u003es. Overexpression of the \u003cem\u003eTaYABBY4A\u003c/em\u003e in Arabidopsis resulted in delayed bolting and flowering, as well as reductions in the number and diameter of rosette leaves and seed size.\u003c/p\u003e\u003ch2\u003eConclusions\u003c/h2\u003e\u003cp\u003eThis study further confirms that the \u003cem\u003eYABBY\u003c/em\u003e gene family plays an important regulatory role in the growth and development of wheat, providing a reference for in-depth exploration of the functions of \u003cem\u003eYABBY\u003c/em\u003es in wheat.\u003c/p\u003e","manuscriptTitle":"Genome-wide identification of the YABBY gene family and functional characterization of TaYABBY4A in wheat (Triticum aestivum L.)","msid":"","msnumber":"","nonDraftVersions":[{"code":1,"date":"2025-10-16 11:12:14","doi":"10.21203/rs.3.rs-7691254/v1","editorialEvents":[{"type":"communityComments","content":0},{"type":"decision","content":"Revision requested","date":"2025-11-03T19:00:00+00:00","index":"","fulltext":""},{"type":"editorInvitedReview","content":"","date":"2025-10-24T01:11:05+00:00","index":"hide","fulltext":""},{"type":"editorInvitedReview","content":"","date":"2025-10-23T09:23:50+00:00","index":"hide","fulltext":""},{"type":"editorInvitedReview","content":"","date":"2025-10-17T16:25:52+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"255889523800308122795590048282237330385","date":"2025-10-09T01:03:05+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"199842842613125324176289715472980413513","date":"2025-10-06T02:17:05+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"196703346009975015404956772678320868561","date":"2025-10-03T15:37:48+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"70253180250267934596821237078031045092","date":"2025-10-03T14:04:44+00:00","index":"hide","fulltext":""},{"type":"reviewersInvited","content":"","date":"2025-10-03T13:57:36+00:00","index":"","fulltext":""},{"type":"editorInvited","content":"","date":"2025-09-30T15:24:04+00:00","index":"","fulltext":""},{"type":"editorAssigned","content":"","date":"2025-09-29T15:34:35+00:00","index":"","fulltext":""},{"type":"checksComplete","content":"","date":"2025-09-29T15:34:09+00:00","index":"","fulltext":""},{"type":"submitted","content":"BMC Plant Biology","date":"2025-09-23T07:42:22+00:00","index":"","fulltext":""}],"status":"published","journal":{"display":true,"email":"[email protected]","identity":"bmc-plant-biology","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":false,"externalIdentity":"pbio","sideBox":"Learn more about [BMC Plant Biology](http://bmcplantbiol.biomedcentral.com/)","snPcode":"","submissionUrl":"https://www.editorialmanager.com/pbio/default.aspx","title":"BMC Plant Biology","twitterHandle":"BMC_series","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"em","reportingPortfolio":"BMC Series","inReviewEnabled":true,"inReviewRevisionsEnabled":true}}],"origin":"","ownerIdentity":"98361073-22ee-4e38-8580-e9e7baa1701f","owner":[],"postedDate":"October 16th, 2025","published":true,"recentEditorialEvents":[],"rejectedJournal":[],"revision":"","amendment":"","status":"published-in-journal","subjectAreas":[],"tags":[],"updatedAt":"2026-01-05T16:02:04+00:00","versionOfRecord":{"articleIdentity":"rs-7691254","link":"https://doi.org/10.1186/s12870-025-07920-w","journal":{"identity":"bmc-plant-biology","isVorOnly":false,"title":"BMC Plant Biology"},"publishedOn":"2025-12-30 15:58:19","publishedOnDateReadable":"December 30th, 2025"},"versionCreatedAt":"2025-10-16 11:12:14","video":"","vorDoi":"10.1186/s12870-025-07920-w","vorDoiUrl":"https://doi.org/10.1186/s12870-025-07920-w","workflowStages":[]},"version":"v1","identity":"rs-7691254","journalConfig":"researchsquare"},"__N_SSP":true},"page":"/article/[identity]/[[...version]]","query":{"redirect":"/article/rs-7691254","identity":"rs-7691254","version":["v1"]},"buildId":"8U1c8b4HqxoKbykW_rLl7","isFallback":false,"isExperimentalCompile":false,"dynamicIds":[84888],"gssp":true,"scriptLoader":[]}

Text is read by the "Ask this paper" AI Q&A widget below. Extraction quality varies by source — PMC NXML preserves structure cleanly, OA-HTML may include some navigation residue, and OA-PDF can have broken hyphenation. The publisher copy (via DOI) is the canonical version.

My notes (saved in your browser only)

Ask this paper AI returns verbatim quotes from the full text · source: preprint-html

Answers must be backed by verbatim quotes from this paper's full text. Hallucinated quotes are dropped automatically; if no verbatim passage answers the question, we say so. How this works

Citation neighborhood (no data yet)

We don't have any in-corpus citations linked to this paper yet. This is a recent paper (2025) — citers typically take a year or two to land, and the OpenAlex reference graph may still be filling in.

Source provenance

europepmc
last seen: 2026-05-20T01:45:00.602351+00:00
unpaywall
last seen: 2026-05-22T02:00:06.705733+00:00
License: CC-BY-4.0