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高砷胁迫下水稻苗的比较蛋白质组学分析

Comparative proteomic analysis of rice shoots exposed to high arsenate.

机构信息

College of Horticulture and Forestry Sciences, Huazhong Agricultural University, Wuhan, 430070, China; Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, the Chinese Academy of Sciences, Moshan, 430074, China.

出版信息

J Integr Plant Biol. 2013 Oct;55(10):965-78. doi: 10.1111/jipb.12058. Epub 2013 Jun 17.

Abstract

Consumption of arsenic contaminated water and cereals is a serious threat to humans all over the world. Rice (Oryza sativa "Nipponbare"), as a main cereal crop, can accumulate arsenic more than 10-fold that of in other cereals. To gain a comprehensive understanding of the response of rice subjected to 100 µM arsenate stress, a comparative proteomic analysis of rice shoots in combination with morphological and biochemical investigations have been performed in this study. The results demonstrated that arsenate suppressed the growth of rice seedlings, destroyed the cellular ultra-structure and changed the homeostasis of reactive oxygen species. Moreover, a total of 38 differentially displayed proteins, which were mainly involved in metabolism, redox and protein-metabolism, were identified. The data suggest the arsenic can inhibit rice growth through negatively affecting chloroplast structure and photosynthesis. In addition, upregulation of the proteins involved in redox and protein metabolism might help the rice to be resistant or tolerant to arsenic toxicity. In general, this study improves our understanding about the rice arsenic responsive mechanism.

摘要

食用受砷污染的水和谷物是全世界人类面临的严重威胁。水稻(Oryza sativa “Nipponbare”)作为主要的谷物作物,其砷积累量比其他谷物高出 10 倍以上。为了全面了解水稻受到 100µM 砷酸盐胁迫的反应,本研究对水稻幼苗进行了比较蛋白质组学分析,并结合形态和生化研究。结果表明,砷酸盐抑制了水稻幼苗的生长,破坏了细胞的超微结构,改变了活性氧的动态平衡。此外,共鉴定出 38 种差异表达蛋白,主要涉及代谢、氧化还原和蛋白质代谢。这些数据表明,砷可能通过负向影响叶绿体结构和光合作用来抑制水稻的生长。此外,参与氧化还原和蛋白质代谢的蛋白质的上调可能有助于水稻对砷毒性产生抗性或耐受性。总的来说,本研究提高了我们对水稻砷响应机制的认识。

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