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拟南芥短链脱氢酶/还原酶 3,一种脱落酸缺陷 2 同源物,参与植物防御反应,但不参与 ABA 生物合成。

The Arabidopsis short-chain dehydrogenase/reductase 3, an abscisic acid deficient 2 homolog, is involved in plant defense responses but not in ABA biosynthesis.

机构信息

Institute of Plant and Microbial Biology, Academia Sinica, Taipei 115, Taiwan.

出版信息

Plant Physiol Biochem. 2012 Feb;51:63-73. doi: 10.1016/j.plaphy.2011.10.013. Epub 2011 Oct 29.

Abstract

ABSCISIC ACID DEFICIENT2 (ABA2) encodes a short-chain dehydrogenase/reductase1 (SDR1) that catalyzes the multi-step conversion of xanthoxin to abscisic aldehyde during abscisic acid (ABA) biosynthesis in Arabidopsis thaliana. In this study, AtSDR2 and AtSDR3, the two closest homologs to AtABA2, were investigated for their potential role in ABA biosynthesis. AtSDR2 showed undetectable transcription in plants grown under normal conditions or under stress. AtSDR3 and AtABA2 have different spatial and temporal expression patterns. Complementation testing demonstrated that the pABA2::SDR3 transgene failed to complement the aba2 mutant phenotype, and that transgenic plants showed the same levels of ABA as the aba2 mutants. These data suggest that AtSDR3 confers no functional redundancy to AtABA2 in ABA biosynthesis. Interestingly, microarray data derived from Genevestigator suggested that AtSDR3 might have a function that is related to plant defense. Pseudomonas syringae pv. tomato (Pst) DC3000 infection and systemic acquired resistance (SAR) activator application further demonstrated that AtSDR3 plays an important role in plant defense responses at least partially through the regulation of AtPR-1 gene expression.

摘要

脱落酸缺陷 2(ABA2)编码一个短链脱氢酶/还原酶 1(SDR1),该酶在拟南芥脱落酸(ABA)生物合成中催化黄氧素向脱落酸醛的多步转化。在这项研究中,研究了与 AtABA2 最接近的两个同源物 AtSDR2 和 AtSDR3 在 ABA 生物合成中的潜在作用。在正常条件或胁迫下生长的植物中,AtSDR2 的转录无法检测到。AtSDR3 和 AtABA2 具有不同的时空表达模式。互补测试表明,pABA2::SDR3 转基因未能互补 aba2 突变体表型,并且转基因植物表现出与 aba2 突变体相同水平的 ABA。这些数据表明 AtSDR3 在 ABA 生物合成中不能赋予 AtABA2 功能冗余。有趣的是,来自 Genevestigator 的微阵列数据表明 AtSDR3 可能具有与植物防御相关的功能。丁香假单胞菌 pv.番茄(Pst)DC3000 感染和系统获得性抗性(SAR)激活剂的应用进一步表明,AtSDR3 通过调节 AtPR-1 基因的表达,至少部分地在植物防御反应中发挥重要作用。

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