Ta ExpA6, VRT-A2 and Ta GW2 genes differentially affect grain weight, grain number and yield of wheat through their physiological determinants

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Wheat lines with modified Ta ExpA6, Ta GW2, and VRT-A2 genes demonstrated that Ta ExpA6 overexpression increased grain yield by enhancing thousand grain weight without compromising grain number, whereas Ta GW2 disruption reduced spike number to compensate for increased weight.

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This study investigated the physiological mechanisms underlying the trade-off between grain number and thousand grain weight in wheat by analyzing three modified gene lines under varying plant densities. The researchers found that ectopic expression of TaExpA6 increased both grain weight and total yield, whereas disruption of TaGW2 improved weight but reduced spike and grain numbers due to altered resource allocation. Additionally, lowering the plant density mitigated this trade-off by enhancing resource availability per spike, allowing for simultaneous gains in both traits. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Physiological basis of the trade-off between grain number (GN) and thousand grain weight (TGW) is key to improve wheat yield. To that end, three wheat line groups were assessed at conventional (300-350 pl m -2 ) and low (44 pl m -2 ) plant rates in the field: Ta ExpA6 (ectopic expression), Ta GW2 ( TaGW2 triple mutant), and Ta P1xGW2A ( VRT-A2 ectopic expression and TaGW2-A knock-out), together with their wild-types (WT). Except Ta P1xGW2A, the manipulated lines increased TGW over their WTs. However, only the transgenic TaExpA6 line reached higher grain yield (GY) than its WT, whereas increased TGW recorded by the triple knockout of TaGW2 was fully compensated by reduced spike number (SpN) and grain number per spike (GNS). Contrasting effects of Ta ExpA6 and Ta GW2 lines were found on the ovary weight and floret dynamics, associated with the trade-off between GW and GN. Interestingly, the overexpression of TaExpA6 gene acts in grain tissues at post-anthesis avoiding the overlap with GN determination, while TaGW2 disruption constrains tillering, likely as a pleiotropic effect, and shifts intra-spike resource allocation promoting early ovary growth at the expense of distal floret development and GNS. Low plant rate increased resource allocation to the spike, mitigating the GW–GNS trade-off and increasing both traits simultaneously.
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Abstract Physiological basis of the trade-off between grain number (GN) and thousand grain weight (TGW) is key to improve wheat yield. To that end, three wheat line groups were assessed at conventional (300-350 pl m-2) and low (44 pl m-2) plant rates in the field: TaExpA6 (ectopic expression), TaGW2 (TaGW2 triple mutant), and TaP1xGW2A (VRT-A2 ectopic expression and TaGW2-A knock-out), together with their wild-types (WT). Except TaP1xGW2A, the manipulated lines increased TGW over their WTs. However, only the transgenic TaExpA6 line reached higher grain yield (GY) than its WT, whereas increased TGW recorded by the triple knockout of TaGW2 was fully compensated by reduced spike number (SpN) and grain number per spike (GNS). Contrasting effects of TaExpA6 and TaGW2 lines were found on the ovary weight and floret dynamics, associated with the trade-off between GW and GN. Interestingly, the overexpression of TaExpA6 gene acts in grain tissues at post-anthesis avoiding the overlap with GN determination, while TaGW2 disruption constrains tillering, likely as a pleiotropic effect, and shifts intra-spike resource allocation promoting early ovary growth at the expense of distal floret development and GNS. Low plant rate increased resource allocation to the spike, mitigating the GW–GNS trade-off and increasing both traits simultaneously. Competing Interest Statement The authors have declared no competing interest.

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europepmc
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