{"paper_id":"9a730741-02ae-4e60-a6bb-d514ba1d37d5","body_text":"The human endometrium is a dynamic and regenerative tissue. It renews monthly through cyclical regeneration from adult stem/progenitor cells and is associated with reproductive pathologies, such as endometriosis and adenomyosis. The human endometrium is the lining of the uterus and originally derived from embryonic mesoderm ( Ye  et al. , 2011 ). Morphologically, it comprises two layers: the basalis and functionalis ( Fig. 1 ). The thin deep germinal basalis layer remains from cycle to cycle while the upper functionalis layer is highly regenerative ( Jabbour  et al. , 2006 ). Towards the end of the menstrual cycle, apoptosis can be observed, and shedding of the functionalis occurs. The process of endometrial shedding starts superficially and gradually progresses to the deeper layers, lasting for 3–5 days, after which regeneration commences from the basal layer ( Maybin and Critchley, 2015 ).\nShedding, growth and differentiation of endometrial epithelial cells . The endometrium consists of the basalis and functionalis layer, with the basalis remaining throughout the menstrual cycle, while the functionalis is regenerated from the epithelial stem/progenitor cells residing in the horizontal branching glands of the basalis. Basalis SSEA-1+ epithelial cells from gland stumps migrate over the denuded endometrium to re-epithelialise it or repair it, thereby generating the new luminal epithelium. During the proliferative stage, estrogen dominance drives the rapid proliferation of the glandular and luminal epithelial cells (transit amplifying cells) of the vertical glands as they extend vertically into the functionalis, to generate a mucosa up to 10 mm in thickness. Multiple vertical glands can emanate from the same horizontal glandular segments, indicating that mature independent glands share common cellular origins. In the secretory phase under progesterone dominance, the epithelial cells of the glands differentiate into secretory cells producing a histiotroph for nourishing an implanting blastocyst until placentation is fully established. Differentiated ciliated epithelial cells are distributed in both the glandular and luminal epithelium. Created in BioRender. Subramaniam, S. (2026)  https://BioRender.com/6ps9y39 .\nDuring regeneration, endometrial epithelial cells acquire mutations at rates higher than those observed for stromal cells and higher than what would normally be expected for epithelium ( Suda  et al. , 2019 ). These mutations are largely confined to epithelial cells. In micro-dissected endometriotic lesions, somatic mutations were observed to be significantly enriched in the epithelium and not in the stromal component ( Noe  et al. , 2018 ). Whole‑exome and targeted sequencing studies of deep infiltrating endometriosis (DIE) also showed that known cancer driver mutations were limited to the epithelial cells, with no detectable mutations in the stromal cells of the same lesions ( Anglesio  et al. , 2017 ). However, evidence from a recent study suggests that, while uncommon, somatic mutations can also be detected in the stromal compartment, indicating that stromal contribution may not be entirely absent ( Olafsson  et al. , 2026 ).\nTogether, these findings support epithelial cells as the primary carriers of somatic alterations in endometriosis, whereas stromal cells do not show the same frequency of mutations. Extensive proliferation of epithelial cells that harbour mutations within individual glands may result in regions of the endometrium with an altered genetic profile, potentially impacting the function of otherwise normal glands or contributing to the development of pathology. The role these mutations play in endometrial pathologies is not yet clear, but deserves further attention. Historically, we have had a limited ability to study endometrial epithelial function and the implications of genetic alterations, but this is changing with development of new tools and approaches.\nIn human endometrium, the regenerative capacity is facilitated by stem/progenitor cells located in the basalis endometrium ( Gargett, 2004 ,  2007 ). These epithelial progenitor cells, identified by the N-cadherin marker in the horizontal branching glands of the deep basalis, are quiescent and rarely proliferate, despite expressing estrogen receptor alpha (ESR1) ( Valentijn  et al. , 2013 ;  Nguyen  et al. , 2017 ) ( Fig. 1 ). In the early proliferative stage, glands emanate from horizontal basalis gland segments ( Yamaguchi  et al. , 2021 ), generating the vertical glands which contain the dividing epithelium of the functionalis glands ( Fig. 1 ). At this stage, the functionalis epithelial glands are straight, narrow, and tubular, and lined with low columnar epithelium. With each round of cell division, the epithelial cells become more differentiated and gradually lose their proliferative capacity, as the vertical glands grow and give rise to the luminal epithelium ( Gargett, 2007 ). This differentiation occurs under the influence of progesterone during the secretory phase ( Gargett  et al. , 2008 ). If no embryo is present, or if the embryo does not implant or is developmentally compromised ( Norwitz  et al. , 2001 ), the progesterone levels fall, and a new cycle commences with the shedding of the functionalis layer during menstruation.\nNew insights into the structure of the basalis glands, from lineage tracing of mitochondrial DNA mutations ( Tempest  et al. , 2020 ) and by tissue clearing and 3D imaging, have revealed horizontal, rhizome-like glandular structures that overlap and extend across multiple regions to provide deep connections between otherwise independent glands ( Yamaguchi  et al. , 2022 ). Multiple vertical glands emanate from the same horizontal glandular segment, indicating that mature independent glands share common cellular origins in this basalis structure ( Fig. 1 ).\nAs the proliferation continues, both luminal and glandular epithelium form the new functionalis ( Fig. 1 ). These epithelial cells develop from the basalis epithelial progenitors through a coordinated exposure to estrogen and progesterone ( Maybin and Critchley, 2015 ). Estrogen secreted by the developing ovarian follicle binds to ESR-1 from the endometrial stromal cells, inducing the proliferation of N-cadherin-negative glandular epithelial cells in the nascent vertical glands ( Cunha  et al. , 2017 ;  Nguyen  et al. , 2017 ). The precise timing of when the endometrial epithelial cells become responsive to estrogen remains unknown.\nThe luminal epithelial lining the inner surface of the uterus is the site of initial attachment and implantation of the embryo ( Fukui  et al. , 2019 ). Tall columnar luminal epithelial cells, originally derived from the basalis gland epithelium, cover the surface of the uterine lumen, serving as a barrier which separates the uterine contents from the underlying tissue. After ovulation, proliferation slows, and in response to progesterone, the luminal epithelial cells change their morphology to short columnar or cuboidal cells, and the glandular cells differentiate into secretory cells, which secrete histotrophic factors essential for embryo implantation and conceptus growth ( Hempstock  et al. , 2004 ;  Sternberg  et al. , 2021 ).\nEpithelial proliferation is accompanied by ciliogenesis of both the glandular and luminal cells ( Ludwig and Metzger, 1976 ) as they differentiate ( Fig. 1 ), displaying distinct transcriptomic profiles ( Wang  et al. , 2020 ;  Garcia-Alonso  et al. , 2021 ). Ciliated epithelial cells are characterized by the presence of motile cilia that contribute to fluid flow and cellular locomotion. Variations in the proportion of ciliated cells in the lumen and glandular regions of the endometrium have been reported across time during the menstrual cycle, peaking in both compartments at about 20% of the cells ( Masterton  et al. , 1975 ) and decreasing during pregnancy and after hormonal treatment ( Brosens and Vasquez, 1976 ;  Verhage  et al. , 1979 ).\n\nThe cyclical replication of epithelial cells, as required for the regenerative process, increases the chance of random genetic errors arising in the daughter cells. These could be propagated through subsequent cycles or inherited by non-shedding cells within ectopic endometrial tissues, such as lesions of endometriosis or adenomyosis. Evidence supports an increased incidence of mutations in epithelial cells in both normal endometrium and in benign lesions ( Suda  et al. , 2019 ). Whether this high mutation rate contributes to these pathologies is an open question; however, the presence in both eutopic and ectopic epithelial cells are increasingly being catalogued ( Table 1 ).\nSomatic mutations observed in endometrial and endometriotic tissue.\n• For whole genome and whole exome sequencing studies, genes are only included if specifically addressed by the original article.\n• Numbers represent the patients with mutations/number of patients examined.\n• If several different techniques were used results of both were included.\nSUP, superficial endometriosis; OMA, endometrioma; DIE, deeply infiltrating endometriosis.\nThe low frequency of mutations in normal tissue makes their investigation technically challenging. Several strategies to enrich the cells that harbour mutations have been trialled, including sequencing of  in vitro  clones ( Blokzijl  et al. , 2016 ), the collection of small biopsies containing distinct structural elements ( Martincorena  et al. , 2015 ,  2018 ), and the sequencing of single cells ( Lodato  et al. , 2018 ). Microdissection and targeted gene-sequencing confirmed that endometrial mutations are largely confined to the epithelial compartment ( Suda  et al. , 2019 ).\nFurther attempts to enrich the mutation-containing cells by the examination of individual glands revealed a heterogeneous endometrial landscape. Individual glands within the same endometrium display variations in their mutational profile. Whole-exome and targeted sequencing of 11 endometrial glands identified mutations in multiple cancer-associated genes, including phosphatidylinositol-4,5-Bisphosphate 3-Kinase Catalytic Subunit Alpha ( PIK3CA) , Kirsten Rat Sarcoma Viral Oncogene Homolog  (KRAS) , Rho GTPase-activating protein 35  (ARHGAP35)  and Phosphoinositide-3-Kinase Regulatory Subunit 1  (PIK3RA)  ( Suda  et al. , 2018 ). Analysis of 257 histologically normal endometrial glands from 28 women found 12 genes that displayed positive selection within glands:  PIK3CA, PIK3R1 ,  ARHGAP35 ,  F-Box , and WD Repeat Domain-Containing 7  (FBXW7) , Zinc Finger Homeobox 3  (ZFHX3) , Forkhead Box A2  (FOXA2) , Erb-B2 Receptor Tyrosine Kinase 2  (ERBB2) , Chromodomain Helicase DNA-Binding Protein 4  (CHD4), KRAS , Speckle-Type POZ Protein  (SPOP) , Protein Phosphatase 2 Scaffold subunit Alpha  (PPP2R1A) , and Erb-B2 Receptor Tyrosine Kinase 3  (ERBB3)  ( Moore  et al. , 2020 ). Targeted sequencing of 98 women identified mutations in  KRAS  pG12/G13 (59.18%),  PIK3CA  p.H1047 (19.38%), and  PPP2R1A  (15.31%) in normal endometrium and myometrium from women with adenomyosis, with the prevalence being significantly associated with parity ( Inoue  et al. , 2020 ).\nClonality is a key concept for epithelial mutations to drive endometrial disease. Most genetic alterations are either harmless, producing no influence on phenotype, or so deleterious that cells cannot survive ( Lynch  et al. , 2016 ). Clonality occurs when there is positive selection of mutant cells that better fit their environment ( Watson  et al. , 2020 ). In the endometrium, significant clonal expansion likely occurs early in the menstrual cycle with positive selection. Mutations in mature cells are shed during menstruation, whereas mutations acquired early or in the basalis may remain and re-establish clonal glands in the next cycle. This suggests that epithelial mutations acquired in early epithelial cell development may have more severe consequences and lead to clinical manifestations. Identifying recurring molecular alterations in endometrial samples collected over time may help to identify women at risk of benign or malignant conditions. Studies have shown that genomic and epigenetic changes in endometrial tissue may lead to the clinical diagnosis. For example, the presence of aberrant DNA methylation patterns and somatic mutations in benign endometrial biopsies has been shown to correlate with future development of endometrial cancer ( Multinu  et al. , 2020 ). Another study indicated that molecular analysis of endometrial biofluids may improve the early detection, risk stratification, and monitoring of women with endometrial hyperplasia, who are at risk of developing endometrial cancer ( Weng  et al. , 2022 ).\nPrevious studies support the clonal expansion of endometrial glands. Using X chromosome inactivation, a monoclonal composition of endometrial epithelial glands was identified ( Tanaka  et al. , 2003 ). Analysis of individual glands within the endometrium revealed that 91% of the glands were clonal with a distribution of variant allele frequency (VAF) of between 0.3 and 0.5, suggesting that each gland is descended from a distinct single progenitor stem cell ( Moore  et al. , 2020 ). A targeted analysis of  KRAS  and  PIK3CA  in ten endometrial glands from three different sections from three different women revealed a varying degree of mutations ranging from 0% to 50% for  PIK3CA  in particular, which indicates clonal expansion ( Sato  et al. , 2023 ).\nEndometriosis is the growth of endometrial cells outside the uterine cavity. It is believed to arise from endometrial cells that are refluxed into the peritoneal cavity during menstruation ( Sampson, 1927 ) and this has been demonstrated for human endometrial stem/progenitor cells ( Masuda  et al. , 2021 ). Stem/progenitor cells, which are shed and transported through retrograde menstruation, are clonogenic and could initiate endometriosis lesions ( Cousins  et al. , 2018 ). While a molecular-based consensus of endometriosis subtypes is still lacking ( International working group of AAGL, ESGE, ESHRE and WES  et al ., 2021 ), the lesions are currently separated into three groups based on anatomical location and surgical appearance ( Chapron  et al. , 2011 ): superficial peritoneal lesions (SUP) grow on the lining of the peritoneal cavity; ovarian endometrioma (OMA) are found on the ovaries; and deeply infiltrating endometriosis (DIE) lesions, the most severe form, are characterized by infiltration greater than 5 mm into the underlying tissue.\nThe first indication that mutations in endometriosis tissue may have consequences for disease progression occurred when targeted mutations of G12D  KRAS  cells in the bursal cavity of BALB/C mice resulted in benign epithelial lesions that closely resembled endometriosis ( Dinulescu  et al. , 2005 ). Later, a study identified AT Rich Interaction Domain 1A ( ARID1A)  mutations in two atypical endometriosis lesions, contiguous with clear cell ovarian cancer ( Wiegand  et al. , 2010 ). Subsequent research is beginning to catalogue the incidence and prevalence of mutations in endometriosis across the different anatomical subtypes.\nParallels have been drawn between DIE, as the most invasive and severe form of the disease, and malignant tissue, leading to the search for somatic driver mutations ( Horne and Missmer, 2022 ). An early study applying exome sequencing on 27 DIE lesions from 24 patients identified mutations in 19 samples ( Table 1 ). Five patients were found to have mutations in cancer driver genes ( ARID1A ,  PIK3CA ,  KRAS , and  PPP2R1A)  ( Anglesio  et al. , 2017 ), suggesting they may have a role in establishing non-malignant lesions. A follow-up study of 36 DIE lesions with targeted sequencing of 33 genes identified mutations in  KRAS  (7/36) and Beta-catenin  (CTNNB1) ( 1/36) ( Lac  et al. , 2019 ). Using orthogonal methods, including digital droplet polymerase chain reaction (ddPCR), additional mutations in  ERBB2, PIK3CA , and  CTNNB1  were observed in the glandular epithelium ( Lac  et al. , 2019 ) and, finally, with immunohistochemistry, a loss of Phosphatase and Tensin Homolog (PTEN) protein expression in 5 out of 36 patients was also observed ( Lac  et al. , 2019 ). Altogether this study identified 13 samples of these 36 cases with mutations in cancer driver genes ( Lac  et al. , 2019 ). In contrast, targeted sequencing of 1,296 genes in the epithelial cells excised from the glandular region of 13 DIE lesions identified only 28 variants, all of which had a low minor allele frequency (MAF) (<10%) ( Koppolu  et al. , 2021 ). A study of 85 driver genes in a custom-designed panel found mutations in only 5 of the genes ( Koppolu  et al. , 2021 ). Only one sample had a  KRAS  mutation (p.Gly12Asp) that occurred alongside a mutation in p53 (p.Glu271Lys) ( Koppolu  et al. , 2021 ). Genes mutated in more than one patient included the passenger genes, Alpha Thalassemia/Mental Retardation Syndrome X-Linked ( ATRX) , Ryanodine Receptor 1 ( RYR1) , and Dynein Axonemal Heavy Chain 7 ( DNAH7)  ( Koppolu  et al. , 2021 ). A focus on  KRAS  codons 12 and 13, the most commonly mutated region of this gene, found no mutations in 13 DIE lesions ( Kim  et al. , 2018 ). Together, the current literature suggests a complex heterogeneous landscape of mutations in DIE lesions potentially driven by variations in location, age and fibrosis.\nEndometrioma (OMA) is the growth of endometriotic lesions on the ovary. A spectrum of mutations has also been reported in the epithelial cells within endometrioma, although the genes vary across studies ( Table 1 ). Using a discovery cohort of 13 endometriomas and whole exome sequencing, mutations were observed in 15 genes, including  KRAS (8/13), PIK3CA (3/13) , Titin  (TTN) (4/13), FBXW7 (1/13), ARHGAP35 (1/13), PPP2R1A (0/13) , Mucin 6, Oligomeric Mucus/Gel-Forming  (MUC6) (2/13) , Plexin B2  (PLXNB2) (1/13) , CUB and Sushi Multiple Domains 3  (CSMD3) (1/13) , Fibrillin 2  (FBN2) (2/13) , HEAT repeat containing 1  (HEATR1) (3/13), KIAA1109 (2/13), PIK3R1 (1/13) , taste receptor type 2 ( TAS2R31) (3/13) , Protein Tyrosine Phosphatase, Non-Receptor Type 13  (PTPN13) (1/13)  and Facioscapulohumeral Muscular Dystrophy Region Gene 1 ( FRG1) (2/13)  ( Suda  et al. , 2018 ) . KRAS  was the most frequently mutated gene at hotspot amino acids within codons 12, 13, or 16 ( Suda  et al. , 2018 ). In contrast, targeted analysis of  KRAS ,  PPP2R1A, PIK3CA, ARID1A ,  B- Raf Proto-Oncogene, Serine/Threonine Kinase ( BRAF) , NRAS Proto-Oncogene, GTPase ( NRAS) , HRAS Proto-Oncogene, GTPase ( HRAS) , Extracellular Signal-Regulated Kinase 1 ( ERK1)  and  ERK2  and  PTEN  in 101 ovarian endometriosis samples found only four mutations in three lesions, including a  KRAS  p.G12V,  PPP2R1A  p.S256F mutation, and two  ARID1A  nonsense mutations (p.Q403 and p.G1926) ( Zou  et al. , 2018a ).\nStudies targeting the mutant alleles of  KRAS  p.G12V in 26 endometriomas identified 10 mutations, with suggestions that these mutations were associated with inflammation and intratumor heterogeneity ( Yachida  et al. , 2021 ). Another study on  KRAS  mutations on codons 12 and 13 in 12 OMA samples found no mutations ( Kim  et al. , 2018 ). A targeted approach has also been used to investigate Transcription regulating factor 1 ( TRERF1 ) (2/92, 2.2%) ( Cao  et al. , 2018 ), CCCTC-binding factor ( CTCF ) (2/92, 2.2%), and Myosin Heavy Chain 8 ( MYH8)  mutations (2/152) ( Lou  et al. , 2020 ). Examination of the entire coding sequence of Caspase Recruitment Domain Family member 10 ( CARD10)  and  CARD11  in 101 patients with ovarian endometriosis identified four novel somatic mutations, two in-frame deletions of  CARD10  and two heterozygous missense mutations in  CARD11  ( Zou  et al. , 2018b ). A relationship between endometrioma mutations and clinical outcomes is still lacking. However, there is some evidence that KRAS mutations and somatic PTEN loss are associated with disease severity ( Orr  et al. , 2023 ;  Tucker  et al. , 2025 ). KRAS mutations and PTEN loss are correlated with more severe anatomical subtypes such as DIE and OMA.\nThe mutational profile of SUP is yet to be investigated as thoroughly as either OMA or DIE lesions. One investigation on 40 iatrogenic lesions excised from various locations, including the abdominal wall and recto-uterine pouch, performed in parallel with DIE lesions, identified mutations in four patients, including  KRAS  (2/40),  PIK3CA  (1/40), and  ERRB2  (1/40), although with a rate of mutations less than that observed in DIE lesions ( Lac  et al. , 2019 ). A study on rare cases of endometriosis-associated intestinal tumours in two patients using whole exome sequencing identified frameshift mutations in  ARID1A ,  PTEN , and  p53  ( Kurose  et al. , 2021 ). Another study that included 18 SUP lesions from a Korean population found no mutations in codon 12 or 13 of  KRAS  ( Kim  et al. , 2018 ).\nCommon mutations that occur in different lesions are of particular interest as they suggest a shared precursor mutation and may provide insight into disease pathogenesis. As such, there have been attempts to compare rates and identity of mutations across endometriosis subtypes within the same patient. In one case, samples were collected from the right and left ovary of the same patient and investigation of their mutational status found that one lesion harboured mutations in  KRAS , whereas the other lesion contained a mutation in  PTEN , suggesting that either these lesions were not seeded from the same precursor cell, or that they had developed differently over time ( Suda  et al. , 2018 ).\nDifferences in the rate of mutations across subtypes have also been observed. Analysis of  KRAS  codon 12 mutations indicated variations in anatomical subtypes with superficial-only lesions (35.1%), showing the lowest proportion of mutations when compared to either OMA only, DIE only (60.6%), or mixed anatomic subtypes (60.6%), supporting an association of increased mutations with more severe or progressed lesions ( Orr  et al. , 2023 ). In 59 lesion samples, hotspot mutations were observed in 27 samples (45.8%) with the most common being  PIK3CA , followed by  KRAS  and  CTNNB1 : a trend that was consistent in all lesion subtypes, although with OMA showing the highest percentage of mutations ( Praetorius  et al. , 2022 ). Significantly, these authors reported evidence of identical mutations in different lesions within the same patient, suggesting a common ancestor cell ( Praetorius  et al. , 2022 ), supporting a shared pathogenesis.  KRAS  G12D was the most likely mutation to become clonal ( Orr  et al. , 2023 ).\nAdenomyosis is characterized by endometrial-like epithelium and stroma invading the myometrium, often leading to uterine enlargement, pain, and prolonged menstrual bleeding ( Buggio  et al. , 2021 ). Mutational profiling of epithelial cells in adenomyosis identified 134 unique synonymous and non-synonymous single-nucleotide polymorphisms (SNPs) in 31 out of 51 adenomyosis patients, with a mean of 2.6 mutations per individual with a low variant allele frequency mean of 4.8% ( Inoue  et al. , 2019 ), similar to endometriosis ( Table 1 ).  KRAS  mutations were found in 37.1% of the cases, most commonly in p.G12, and PIK3CA mutations were also confirmed ( Inoue  et al. , 2019 ). Importantly, the presence of  KRAS  mutations was also observed in surrounding normal epithelial cells, supporting the theory that the acquisition of  KRAS  mutations enhances the invasiveness and proliferative capacity. Sequencing in 17 patients also identified  KRAS  and  ARID1A  as the most commonly mutated genes ( Chao  et al. , 2023 ). More recently, an examination of 16 adenomyosis samples identified mutations in 81 different genes, although only one of these,  PIK3CA , appeared in more than one sample (two samples) with a higher mutation per sample than in endometrial or endometriosis samples ( Li  et al. , 2021 ). It has been proposed that the association of adenomyosis with parity might be mediated through an increase in mutations in normal endometrium induced by physical stressors, including uterine contractions and vaginal delivery, which lead to increased cellular proliferation ( Inoue  et al. , 2020 ).\nAn analysis of the canonical function of all genes associated with somatic mutations ( Table 1 ) suggested roles in cell proliferation, growth, migration, transcriptional and genomic dysregulation, immune or hormone signaling changes, and telomerase activity changes. To further investigate the potential biological consequences of these mutations, a combined analysis using the STRING database ( von Mering  et al. , 2003 ) was performed. All genes listed in  Table 1  were combined, duplicates were removed, and the resulting gene set was interrogated against the human database to perform functional enrichment and network analysis. Pathway enrichment using KEGG identified endometrial cancer and prostate cancer pathways as the most significantly enriched pathways ( Fig. 2A ;  Supplementary Table S1 ). Annotation using UniProt further indicated enrichment of genes classified as tumour suppressors and proto-oncogenes ( Fig. 2B ;  Supplementary Table S2 ). Subcellular localization analysis revealed that many of the encoded proteins are associated with components of the plasma membrane ( Fig. 2C ;  Supplementary Table S3 ). Protein complex enrichment highlighted associations with both the PTEN signaling complex and the mTOR complex ( Fig. 2D ;  Supplementary Table S4 ). Consistent with these findings, molecular function and biological process enrichment analyses identified signaling pathways related to ErbB signaling and phosphatidylinositol kinase activity as significantly over-represented ( Fig. 2E and F ;  Supplementary Tables S5 and S6 ). This analysis therefore suggests that somatic mutations in the endometrium converge on signaling pathways and may have critical impacts on the regulation of epithelial growth, survival and cellular homeostasis, particularly within the PI3K–PTEN–mTOR axis.\nFunctional enrichment analysis of genes carrying somatic mutations in endometrial tissue . ( a ) KEGG pathway enrichment analysis identified endometrial cancer and prostate cancer pathways as the most significantly enriched pathways ( b ) Functional annotation using UniProt identified enrichment of genes classified as tumour suppressors and proto-oncogenes. ( c ) Subcellular localization analysis revealed that many encoded proteins are associated with the plasma membrane. ( d ) Protein complex enrichment analysis identified significant associations with the PTEN signaling complex and the mTOR complex. ( e ) Gene ontology enrichment analyses of molecular function showed significant over-representation of pathways related to ErbB signaling. ( f ) Biological process enrichment analyses identified signaling pathways related to phosphatidylinositol kinase activity.\n\nCharacterizing the consequences of somatic mutations in well-defined epithelial cell models will help us understand the contribution of individual mutations and the potential to target treatments towards them. Various laboratory models have been used in the past, but have been limited by their inability to recapitulate the complex endometrial environment and by the resistance of these cells to long-term culture. The development of increasingly complex patient-derived  in vitro  models is now providing the necessary tools to understand the contribution of mutations to endometrial pathologies and to trial different therapeutics for individual responses.\nImmortalized endometrial epithelial cell models were widely used in the past ( Table 2 ) ( Fig. 3 ). The introduction of telomerase reverse transcriptase protein (TERT) into proliferative endometrial epithelial cells overcomes replicative senescence ( Boccellino  et al. , 2012 ) and provides a model that can easily be cultured for long periods. Many examples have been produced and manipulated in the past. The hEM3 cell line was established through immortalization and clonal selection and retains the natural characteristics of endometrial epithelium ( Park  et al. , 2021 ).\nIn vitro  models to study somatic mutations in endometrial pathologies . Endometrial models include immortalized cell lines, primary human epithelial cells, organoids and assembloids. Immortal cells are derived from epithelial tissues, genetically modified to retain proliferative capacity. They are limited by genetic drift and an inability to capture patient heterogeneity. Primary human endometrial epithelial cells derived from resected human tissue can be cultured as monolayers under specific conditions. They retain the individual patient character; however, they are limited by a finite life span, and they lack cellular polarity and three-dimensional structure. Organoids are patient-derived epithelial cells grown from epithelial fragments that generate multiple cell types of the epithelial lineage to create polarized cells that maintain three-dimensional gland-like structures. Organoids better recapitulate the  in vivo  environment as they contain multiple cell states but still lack a tumour microenvironment. Assembloids are organoid co-cultures and endometrial stromal cells that mimic the microenvironment. While they are an improvement, they still lack vascularization and immune components. Created in BioRender. Subramaniam, S. (2026)  https://BioRender.com/hjxfzc8 .\nSummary of endometrial pre-clinical models and their key features.\nEasy to culture and expand\nCost effective\nInfinite growth\nLimited by their inability to recapitulate the complex and dynamic endometrial tumour microenvironment\nLack of cellular heterogeneity\nLimited cell interactions\nGenetic drift in long periods of culture\nDrug screening\nFunctional assays\nRetain the individual characteristics of the patient\nLimited lifespan\nSlow growth rate\nRepresent only a single differentiated state of the cell\nDo not recapitulate the complex and dynamic endometrial microenvironment\nFunctional assays\nAssays to identify invitro effects\nDrug response\nMolecular and genetic studies\nRecapitulates the properties and features of in vivo tissue\nGenetically stable\nLong term experiments possible\nMatrigel does not mimic natural endometrial extra cellular matrix\nLack of immune and stromal cell interaction\nMutational and genetic studies\nDrug screening studies and personalized medicine\nHigh throughput screening studies\nMimic dynamic endometrial microenvironment\nStudy of cell–cell interactions\nTime consuming experimental setup\nLimited complexity compared to endometrium\nHigh-throughput drug screening studies\nMutational and genetic studies\nTool for precision therapy\nImmortalized endometrial epithelial cells have been used to investigate the consequences of  KRAS  and  PIK3CA  mutations ( Hossain  et al. , 2021 ). HMOsisEC10 (Wild-type),  KRAS -mutant, and  PIK3CA -mutant cell lines were established from surface epithelial tissue of ovarian endometriosis by the triple expression of an active  CDK4  mutant (CDK4 R24G ),  cyclin D1 , and  hTERT . The mutant cell lines exhibited a higher rate of cell proliferation, invasion, and migration as well as resistance to premature senescence. Neither of the mutant cell lines developed colonies in the soft agar assay, strengthening the theory that multiple genetic mutations are essential for a benign-to-malignant transformation to occur.\nWhile useful, immortalized cell lines have limitations, particularly for studying the consequences of mutations. They are limited by patient heterogeneity and by their inability to recapitulate the complex and dynamic endometrial environment or early developmental cell states. They also rely on the continued expression of exogenous genes, which can induce genomic instability, making it difficult to be sure the observed effects are due to the mutation of interest and not the consequence of genetic drift that occurs over long periods of culture. It is for these reasons that more complex  in vitro  models are being sought for studying the genetic contribution towards endometrial epithelial cell pathologies.\nPrimary endometrial epithelial cells derived from resected human tissue can be cultured as monolayers ( Chen and Roan, 2015 ) to avoid some of the limitations associated with immortalized cell lines ( Kyo  et al. , 2003 ). They can also retain the individual characteristics of the patient, an important feature when studying heterogeneous diseases. They are, however, limited by a finite life span ( Table 2 ) and several approaches have been used to overcome this limitation ( Awatade  et al. , 2018 ). Conditional reprogrammed epithelial cells (CRC) ( Liu  et al. , 2012 ;  Suprynowicz  et al. , 2012 ) are established by maintaining epithelial cells with irradiated mouse fibroblast feeder cells ( Wu  et al. , 2020 ) in specialized media that inhibits Rho-associated protein kinase (ROCK). This method stimulates the continuous doubling of epithelial cells without compromising the characteristic epithelial cell morphology and genome stability.\nSimilar to immortalized cell lines, there are limitations for these conditionally reprogrammed primary cells. Cells grown as monolayers represent only a single differentiated state of the cell and they lack the critical contributions of the surrounding microenvironment. Studies have reported that epithelial cells fail to reproduce the complex and dynamic environments of  in vivo  tissues and may not be responsive after a few passages ( Iruela-Arispe  et al. , 1999 ;  Hibaoui and Feki, 2020 ).\nOrganoids are patient-derived  in vitro  models generated from adult stem cells that are cultured in 3D to recapitulate the properties and features of the  in vivo  tissue ( Table 2 ,  Fig. 3 ). Single-cell analysis of estrogen-treated organoids identified a mixture of epithelial cells, including proliferative, ciliated, unciliated, and stem-cell types, with organoids treated with estrogen, progesterone, and cAMP, revealing a secretory cell population ( Fitzgerald  et al. , 2019 ). The number of ciliated cells increased with estrogen treatment, and similar results were found  in vivo , supporting estrogen regulation of cilia formation.\nA number of studies are beginning to show that organoids are a reliable model to recapitulate endometrial pathologies ( Boretto  et al. , 2019 ;  Marr  et al. , 2025 ). However, limitations of these models still exist. Reproducibility is limited by the ill-defined contents of commonly used hydrogels for 3D growth and the lack of non-epithelial cells such as mesenchymal, endothelial or immune cells in the models, limiting their resemblance to the  in vivo  environment.\nOrganoids offer great potential for studying the influence of somatic mutations in multipotent, clonally expanding cells. Endometrial mutations in  FBXW7 ,  ARID1A , and  PTEN  in primary microsatellite instability tumours were retained in organoids with serial passaging, and 21 of the most frequently mutated genes in endometrial cancer tumours were identified in organoids derived from this tissue ( Boretto  et al. , 2019 ). This result suggests that organoids closely resemble the tumour tissue at the genetic level and represent a significant advance in the ability to study the acquisition and consequence of mutations in endometrial epithelial cells.\nAssembloids are organoids that have been co-cultured with stromal cells to address some of the limitations noted above ( Rawlings  et al. , 2021 ) ( Table 2 ,  Fig. 3 ). Co-culturing of epithelial and stromal cells on collagen scaffolds was also confirmed with the EPCAM +  epithelial and EPCAM -  stromal cells ( Abbas  et al. , 2020 ). A recently published paper illustrated the importance of multicellular organoid co-culture models and the introduction of defined matrices to study their cellular interactions ( Gnecco  et al. , 2023 ). These studies demonstrated that co-culture models generate significant insights into the molecular dynamics in the development of endometrium and reproductive disorders. There remain challenges, however, in strengthening these models further, as they currently lack blood vessels or immune cells. Additionally, due to the dynamic nature of the endometrium, synchronization of the relative developmental stage of each cell type could have significant impacts on their interaction and cellular behaviour.\nGene editing of  in vitro  models is used to study pathology and mutations and to validate drug targets. In the case of organoids established from progenitor cells, there is also the potential to assess mutations on cellular differentiation. Genomic editing of endometrial epithelial  in vitro  models has been limited to date, potentially due to the difficulties in establishing epithelial cell models, but also through the need to manipulate cells in their stem cell state and outside the supporting Matrigel to effectively achieve transduction.\nGenetic manipulation has however been performed in intestinal organoids ( Ringel  et al. , 2020 ), colon cancer ( Boretto  et al. , 2024 ), and cystic fibrosis-derived intestinal organoids ( Schwank  et al. , 2013 ). Stable adult stem cell knock-in organoids have also been generated for colon cancer ( Cortina  et al. , 2017 ;  Shimokawa  et al. , 2017 ). The evolution of the complex  in vitro  models of the endometrial environment, coupled with our rapidly expanding ability to create genetic perturbations, is creating the potential to elucidate the consequences of genetic variants in endometrial epithelial cells.\n\nThe epithelial cells of the endometrium provide critical roles as barrier cells and for the production of histotrophic nutrients. They are characterized by high turnover and rapid replacement. This regenerative capacity is driven by progenitor cells residing in horizontal glandular structures in the basalis that produce vertical glands during the menstrual cycle. Somatic mutations, including known cancer driver mutations, are frequent in these endometrial epithelial cells, but we are yet to understand their functional consequences and their likely significant contributions to aberrant development. Endometriosis and adenomyosis are chronic endometrial disorders that have previously been associated with mutations within the endometrial epithelium.\nThe somatic mutations found frequently within endometrial epithelial cells are often well-studied cancer driver mutations, such as those affecting KRAS, PIK3CA, and ARID1A. The functional consequences of these mutations remain poorly understood, and their potential contributions to the initiation of pathological conditions have yet to be fully elucidated. The cataloguing of these mutations and a subsequent STRING analysis has shown that there is the potential for these somatic mutations to impact genes involved in growth factor signaling and PI3K-mediated cellular regulation: pathways that are central to endometrial. These functions are often associated with both benign and malignant endometrial transformation.\nAlthough genetic alterations are often observed in cancer-associated mutations in epithelial cells, it does not necessarily lead to malignant transformation. Several factors could contribute to this, including clonal competition, the influence of the tissue microenvironment, immune surveillance, and the requirement for additional genetic or epigenetic alterations for tumour initiation. Furthermore, the current genomic datasets have limitations for studying mutations. Many studies rely on conventional next-generation sequencing and bulk sequencing approaches, which have limited sensitivity for detecting low-frequency or rare variants and do not account for cellular heterogeneity. Overcoming these limitations requires more comprehensive methods to better understand the functional consequences of somatic mutations and their roles in endometrial pathology.\nNew technologies such as advanced 3D models, potentially coupled with genetic manipulation, now offer the opportunity to study the functional impact and consequences of these somatic alterations. These approaches can not only help clarify how mutations influence epithelial behaviour but also facilitate the identification of compounds that could be targeted to treat individual patients based on their mutational profiles, thereby enabling personalized therapeutic strategies. This highlights the need for a more comprehensive catalogue of somatic mutations involved in endometrial pathologies, as well as functional studies to identify their biological consequences. Such knowledge will play a key role in our understanding of the mechanisms underlying endometrial diseases and in advancing the development of precision medicine approaches.","source_license":"CC-BY-4.0","license_restricted":false}