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The Wheat GT Factor TaGT2L1D Negatively Regulates Drought Tolerance and Plant Development

机译:小麦GT因子TaGT2L1D负调控干旱耐受性和植物发育

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摘要

GT factors are trihelix transcription factors that specifically regulate plant development and stress responses. Recently, several GT factors have been characterized in different plant species; however, little is known about the role of GT factors in wheat. Here, we show that TaGT2L1A, TaGT2L1B, and TaGT2L1D are highly homologous in hexaploid wheat, and are localized to wheat chromosomes 2A, 2B, and 2D, respectively. These TaGT2L1 genes encode proteins containing two SANT domains and one central helix. All three homologs were ubiquitously expressed during wheat development and were responsive to osmotic stress. Functional analyses demonstrated that TaGT2L1D acts as a transcriptional repressor; it was able to suppress the expression of AtSDD1 in Arabidopsis by binding directly to the GT3 box in its promoter that negatively regulates drought tolerance. TaGT2L1D overexpression markedly increased the number of stomata and reduced drought tolerance in gtl1-3 plants. Notably, ectopic expression of TaGT2L1D also affected floral organ development and overall plant growth. These results demonstrate that TaGT2L1 is an ortholog of AtGTL1, and that it plays an evolutionarily conserved role in drought resistance by fine tuning stomatal density in wheat. Our data also highlight the role of TaGT2L1 in plant growth and development.
机译:GT因子是特异调节植物发育和胁迫响应的三螺旋转录因子。最近,已经在不同的植物物种中鉴定了几种GT因子。然而,关于GT因子在小麦中的作用知之甚少。在这里,我们显示TaGT2L1A,TaGT2L1B和TaGT2L1D在六倍体小麦中高度同源,分别位于小麦染色体2A,2B和2D。这些TaGT2L1基因编码的蛋白质包含两个SANT域和一个中央螺旋。这三个同系物均在小麦发育过程中普遍表达,并且对渗透胁迫有反应。功能分析表明,TaGT2L1D可作为转录阻遏物。它能够通过直接结合其启动子中的GT3盒来抑制拟南芥中AtSDD1的表达,而该启动子对干旱的耐受性具有负调控作用。 TaGT2L1D过表达显着增加了gtl1-3植物的气孔数量并降低了干旱耐受性。值得注意的是,TaGT2L1D的异位表达也影响了花器官的发育和整体植物的生长。这些结果表明,TaGT2L1是AtGTL1的直系同源物,并且通过微调小麦的气孔密度在抗旱性方面发挥了进化上的保守作用。我们的数据还强调了TaGT2L1在植物生长和发育中的作用。

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