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大豆蛋白质组学揭示非生物胁迫响应机制。

Soybean proteomics for unraveling abiotic stress response mechanism.

机构信息

Plant Stress Biology Lab, Department of Botany, West Bengal State University , Kolkata 700126, West Bengal, India.

出版信息

J Proteome Res. 2013 Nov 1;12(11):4670-84. doi: 10.1021/pr400604b. Epub 2013 Sep 24.

Abstract

Plant response to abiotic stresses depends upon the fast activation of molecular cascades involving stress perception, signal transduction, changes in gene and protein expression and post-translational modification of stress-induced proteins. Legumes are extremely sensitive to flooding, drought, salinity and heavy metal stresses, and soybean is not an exception of that. Invention of immobilized pH gradient strips followed by advancement in mass spectrometry has made proteomics a fast, sensitive and reliable technique for separation, identification and characterization of stress-induced proteins. As the functional translated portion of the genome plays an essential role in plant stress response, proteomic studies provide us a finer picture of protein networks and metabolic pathways primarily involved in stress tolerance mechanism. Identifying master regulator proteins that play key roles in the abiotic stress response pathway is fundamental in providing opportunities for developing genetically engineered stress-tolerant crop plants. This review highlights recent contributions in the field of soybean biology to comprehend the complex mechanism of abiotic stress acclimation. Furthermore, strengths and weaknesses of different proteomic methodologies of extracting complete proteome and challenges and future prospects of soybean proteome study both at organ and whole plant levels are discussed in detail to get new insights into the plant abiotic stress response mechanism.

摘要

植物对非生物胁迫的反应依赖于快速激活分子级联反应,包括胁迫感知、信号转导、基因和蛋白质表达变化以及胁迫诱导蛋白质的翻译后修饰。豆类植物对水淹、干旱、盐度和重金属胁迫极为敏感,大豆也不例外。固定 pH 梯度条的发明以及质谱技术的进步使蛋白质组学成为一种快速、敏感和可靠的技术,用于分离、鉴定和表征胁迫诱导蛋白质。由于基因组中功能翻译部分在植物胁迫反应中起着至关重要的作用,蛋白质组学研究为我们提供了参与胁迫耐受机制的蛋白质网络和代谢途径的更详细图片。鉴定在非生物胁迫反应途径中起关键作用的主调控蛋白,为开发具有遗传工程的耐胁迫作物提供了机会。本综述重点介绍了大豆生物学领域的最新研究进展,以深入了解非生物胁迫适应的复杂机制。此外,还详细讨论了不同蛋白质组学方法提取完整蛋白质组的优缺点,以及在器官和整个植物水平上研究大豆蛋白质组的挑战和未来前景,以深入了解植物非生物胁迫反应机制。

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