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Arsenic tolerance in Arabidopsis is mediated by two ABCC-type phytochelatin transporters

液泡 植物螯合素 运输机 亚砷酸盐 戒毒(替代医学) 类金属 ATP结合盒运输机 谷胱甘肽 生物化学 拟南芥 拟南芥 砷毒性 酿酒酵母 砷酸盐 基因 生物 突变体 酵母 化学 金属 细胞质 医学 病理 替代医学 有机化学
作者
Won‐Yong Song,Ji-Young Park,David G. Mendoza‐Cózatl,Marianne Suter‐Grotemeyer,Donghwan Shim,Stefan Hörtensteiner,Markus Geisler,Barbara Weder,Philip A. Rea,Doris Rentsch,Julian I. Schroeder,Youngsook Lee,Enrico Martinoia
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:107 (49): 21187-21192 被引量:651
标识
DOI:10.1073/pnas.1013964107
摘要

Arsenic is an extremely toxic metalloid causing serious health problems. In Southeast Asia, aquifers providing drinking and agricultural water for tens of millions of people are contaminated with arsenic. To reduce nutritional arsenic intake through the consumption of contaminated plants, identification of the mechanisms for arsenic accumulation and detoxification in plants is a prerequisite. Phytochelatins (PCs) are glutathione-derived peptides that chelate heavy metals and metalloids such as arsenic, thereby functioning as the first step in their detoxification. Plant vacuoles act as final detoxification stores for heavy metals and arsenic. The essential PC-metal(loid) transporters that sequester toxic metal(loid)s in plant vacuoles have long been sought but remain unidentified in plants. Here we show that in the absence of two ABCC-type transporters, AtABCC1 and AtABCC2, Arabidopsis thaliana is extremely sensitive to arsenic and arsenic-based herbicides. Heterologous expression of these ABCC transporters in phytochelatin-producing Saccharomyces cerevisiae enhanced arsenic tolerance and accumulation. Furthermore, membrane vesicles isolated from these yeasts exhibited a pronounced arsenite [As(III)]-PC(2) transport activity. Vacuoles isolated from atabcc1 atabcc2 double knockout plants exhibited a very low residual As(III)-PC(2) transport activity, and interestingly, less PC was produced in mutant plants when exposed to arsenic. Overexpression of AtPCS1 and AtABCC1 resulted in plants exhibiting increased arsenic tolerance. Our findings demonstrate that AtABCC1 and AtABCC2 are the long-sought and major vacuolar PC transporters. Modulation of vacuolar PC transporters in other plants may allow engineering of plants suited either for phytoremediation or reduced accumulation of arsenic in edible organs.
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