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基于iTRAQ的水稻花药对高温响应的定量蛋白质组学分析

iTRAQ-Based Quantitative Proteomics Analysis on Rice Anther Responding to High Temperature.

作者信息

Mu Qilin, Zhang Wenying, Zhang Yunbo, Yan Haoliang, Liu Ke, Matsui Tsutomu, Tian Xiaohai, Yang Pingfang

机构信息

Agricultural College, Yangtze University, Jingzhou 434025, China.

Hubei Collaborative Innovation Center for Grain Industry, Jingzhou 434025, China.

出版信息

Int J Mol Sci. 2017 Aug 23;18(9):1811. doi: 10.3390/ijms18091811.

Abstract

As one of the most important crops, rice provides the major food for more than half of the world population. However, its production is limited by many environmental factors, among which high temperature stress (HS) frequently occurs during anthesis and reduces its spikelet fertility. To explore the mechanism of HS tolerance in rice, we conducted a comparative proteomics analysis on the anthers between HS resistant and sensitive cultivars under different levels of high temperature. Under the same HS treatment, the resistant cultivar showed much higher spikelet fertility than the sensitive cultivar. Proteomic data showed that HS lead to the degradation of ribosomal proteins in the sensitive cultivar but not in the resistant one, which might result in the injury of protein biosynthetic machinery. In contrast, HS induced the increase of sHSP, β-expansins and lipid transfer proteins in the resistant cultivar, which might contribute to its ability to tolerate HS. The results provide some new insights into the mechanism of rice HS response.

摘要

作为最重要的作物之一,水稻为世界一半以上的人口提供了主要食物。然而,其产量受到许多环境因素的限制,其中高温胁迫(HS)在花期频繁发生,降低了其小穗育性。为了探究水稻耐热性的机制,我们对不同高温水平下耐热和敏感品种的花药进行了比较蛋白质组学分析。在相同的高温胁迫处理下,抗性品种的小穗育性比敏感品种高得多。蛋白质组学数据表明,高温胁迫导致敏感品种中的核糖体蛋白降解,而抗性品种中则没有,这可能导致蛋白质生物合成机制受损。相反,高温胁迫诱导抗性品种中的小分子热激蛋白(sHSP)、β-扩张蛋白和脂质转移蛋白增加,这可能有助于其耐热能力。这些结果为水稻高温胁迫响应机制提供了一些新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c32f/5618475/1228b8749e0d/ijms-18-01811-g001.jpg

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