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Overexpression of Arabidopsis YUCCA6 in potato results in high-auxin developmental phenotypes and enhanced resistance to water deficit.

机译:马铃薯中拟南芥YUCCA6的过表达导致高生长素发育表型和增强的对水分缺乏的抵抗力。

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Indole-3-acetic acid (IAA), a major plant auxin, is produced in both tryptophan-dependent and tryptophan-independent pathways. A major pathway in Arabidopsis thaliana generates IAA in two reactions from tryptophan. Step one converts tryptophan to indole-3-pyruvic acid (IPA) by tryptophan aminotransferases followed by a rate-limiting step converting IPA to IAA catalyzed by YUCCA proteins. We identified eight putative StYUC (Solanum tuberosum YUCCA) genes whose deduced amino acid sequences share 50%-70% identity with those of Arabidopsis YUCCA proteins. All include canonical, conserved YUCCA sequences: FATGY motif, FMO signature sequence, and FAD-binding and NADP-binding sequences. In addition, five genes were found with ~50% amino acid sequence identity to Arabidopsis tryptophan aminotransferases. Transgenic potato (Solanum tuberosum cv. Jowon) constitutively overexpressing Arabidopsis AtYUC6 displayed high-auxin phenotypes such as narrow downward-curled leaves, increased height, erect stature, and longevity. Transgenic potato plants overexpressing AtYUC6 showed enhanced drought tolerance based on reduced water loss. The phenotype was correlated with reduced levels of reactive oxygen species in leaves. The results suggest a functional YUCCA pathway of auxin biosynthesis in potato that may be exploited to alter plant responses to the environment.Digital Object Identifier http://dx.doi.org/10.1093/mp/sss100
机译:吲哚-3-乙酸(IAA)是一种主要的植物生长素,通过色氨酸依赖性和色氨酸依赖性途径产生。拟南芥中的一个主要途径在色氨酸的两个反应中产生IAA。第一步是通过色氨酸氨基转移酶将色氨酸转化为吲哚-3-丙酮酸(IPA),然后是一个限速步骤,将YUCA蛋白催化的IPA转化为IAA。我们鉴定了八个推定的StYUC(马铃薯YUCCA)基因,其推导的氨基酸序列与拟南芥YUCCA蛋白具有50%-70%的同一性。所有这些都包括规范的,保守的YUCCA序列:FATGY基序,FMO签名序列以及FAD结合和NADP结合序列。另外,发现了五个与拟南芥色氨酸氨基转移酶具有约50%氨基酸序列同一性的基因。组成型过表达拟南芥AtYUC6的转基因马铃薯(Solanum tuberosum cv。Jowon)显示出高生长素表型,如狭窄的向下卷曲的叶子,增加的高度,直立的身材和长寿。过表达AtYUC6的转基因马铃薯植株由于减少了水分流失而表现出增强的耐旱性。该表型与叶片中活性氧的降低水平相关。研究结果表明马铃薯中生长素生物合成的功能性YUCCA途径可用于改变植物对环境的反应。数字对象标识符http://dx.doi.org/10.1093/mp/sss100

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