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ZmASR1 蛋白影响支链氨基酸生物合成,并在缺水条件下维持玉米的籽粒产量。

The ZmASR1 protein influences branched-chain amino acid biosynthesis and maintains kernel yield in maize under water-limited conditions.

机构信息

Université Paris-Sud, UMR 320/UMR 8120 Génétique Végétale, F-91190 Gif-sur-Yvette, France.

出版信息

Plant Physiol. 2011 Oct;157(2):917-36. doi: 10.1104/pp.111.176818. Epub 2011 Aug 18.

Abstract

Abscisic acid-, stress-, and ripening-induced (ASR) proteins were first described about 15 years ago as accumulating to high levels during plant developmental processes and in response to diverse stresses. Currently, the effects of ASRs on water deficit tolerance and the ways in which their physiological and biochemical functions lead to this stress tolerance remain poorly understood. Here, we characterized the ASR gene family from maize (Zea mays), which contains nine paralogous genes, and showed that maize ASR1 (ZmASR1) was encoded by one of the most highly expressed paralogs. Ectopic expression of ZmASR1 had a large overall impact on maize yield that was maintained under water-limited stress conditions in the field. Comparative transcriptomic and proteomic analyses of wild-type and ZmASR1-overexpressing leaves led to the identification of three transcripts and 16 proteins up- or down-regulated by ZmASR1. The majority of them were involved in primary and/or cellular metabolic processes, including branched-chain amino acid (BCAA) biosynthesis. Metabolomic and transcript analyses further indicated that ZmASR1-overexpressing plants showed a decrease in BCAA compounds and changes in BCAA-related gene expression in comparison with wild-type plants. Interestingly, within-group correlation matrix analysis revealed a close link between 13 decreased metabolites in ZmASR1-overexpressing leaves, including two BCAAs. Among these 13 metabolites, six were previously shown to be negatively correlated to biomass, suggesting that ZmASR1-dependent regulation of these 13 metabolites might contribute to regulate leaf growth, resulting in improvement in kernel yield.

摘要

脱落酸、胁迫和成熟诱导(ASR)蛋白大约在 15 年前首次被描述,它们在植物发育过程中积累到高水平,并对各种胁迫作出反应。目前,ASR 对水分亏缺耐受性的影响,以及它们的生理生化功能导致这种胁迫耐受性的方式,仍知之甚少。在这里,我们从玉米(Zea mays)中鉴定了 ASR 基因家族,该家族包含 9 个直系同源基因,并表明玉米 ASR1(ZmASR1)是由表达最活跃的直系同源基因之一编码的。ZmASR1 的异位表达对玉米产量有很大的总体影响,在田间水分限制胁迫条件下也能维持。对野生型和 ZmASR1 过表达叶片的比较转录组学和蛋白质组学分析导致了 3 个转录本和 16 个受 ZmASR1 上调或下调的蛋白质的鉴定。它们中的大多数涉及初级和/或细胞代谢过程,包括支链氨基酸(BCAA)生物合成。代谢组学和转录分析进一步表明,与野生型植物相比,ZmASR1 过表达植物的 BCAA 化合物减少,BCAA 相关基因的表达发生变化。有趣的是,组内相关矩阵分析显示,ZmASR1 过表达叶片中 13 种减少的代谢物之间存在密切联系,包括两种 BCAA。在这 13 种代谢物中,有 6 种先前被证明与生物量呈负相关,这表明 ZmASR1 依赖于对这 13 种代谢物的调节可能有助于调节叶片生长,从而提高籽粒产量。

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