Hayashi Shimpei, Kuramata Masato, Abe Tadashi, Takagi Hiroki, Ozawa Kenjirou, Ishikawa Satoru
Institute for Agro-Environmental Sciences, National Agriculture and Food Research Organization (NARO), Tsukuba, 305-8604, Japan.
Institute of Agrobiological Sciences, NARO, Tsukuba, 305-8604, Japan.
Plant J. 2017 Sep;91(5):840-848. doi: 10.1111/tpj.13612. Epub 2017 Jul 20.
Reduction of the level of arsenic (As) in rice grains is an important challenge for agriculture. A recent study reported that the OsABCC1 transporter prevents the accumulation of As in grains by sequestering As-phytochelatin complexes into vacuoles in the upper nodes. However, how phytochelatins are provided in response to As remains unclear. Here, we show that the phytochelatin synthase OsPCS1 plays a crucial role in reducing As levels in rice grains. Using a forward genetic approach, we isolated two rice mutants (has1 and has2) in which As levels were much higher in grains but significantly lower in node I compared with the wild type. Map-based cloning identified the genes responsible as OsABCC1 in has1 and OsPCS1 in has2. The levels of As in grains and node I were similar between the two mutants, suggesting that OsABCC1 preferentially cooperates with OsPCS1 to sequester As, although rice has another phytochelatin synthase, OsPCS2. An in vitro phytochelatin synthesis assay indicated that OsPCS1 was more sensitive to activation by As than by cadmium, whereas OsPCS2 was more weakly activated by As than by cadmium. Transgenic plants highly expressing OsPCS1 showed significantly lower As levels in grains than did wild-type plants. Our results provide new knowledge of the relative contribution of rice PCS paralogs to As sequestration and suggest a good candidate tool to reduce As levels in rice grains.
降低水稻籽粒中的砷(As)含量是农业面临的一项重要挑战。最近的一项研究报告称,OsABCC1转运蛋白通过将砷 - 植物螯合素复合物隔离到上部节间的液泡中,防止砷在籽粒中积累。然而,植物螯合素如何响应砷的存在仍不清楚。在此,我们表明植物螯合素合酶OsPCS1在降低水稻籽粒中的砷含量方面起着关键作用。使用正向遗传学方法,我们分离出两个水稻突变体(has1和has2),与野生型相比,它们籽粒中的砷含量要高得多,但在第一节间中的砷含量显著较低。基于图谱的克隆确定has1中的相关基因是OsABCC1,has2中的相关基因是OsPCS1。两个突变体籽粒和第一节间中的砷含量相似,这表明尽管水稻还有另一种植物螯合素合酶OsPCS2,但OsABCC1优先与OsPCS1协同作用来隔离砷。体外植物螯合素合成试验表明,OsPCS1对砷激活的敏感性高于镉,而OsPCS2对砷的激活作用比对镉的激活作用弱。与野生型植物相比,高表达OsPCS1的转基因植物籽粒中的砷含量显著降低。我们的研究结果为水稻PCS同源物对砷隔离的相对贡献提供了新知识,并提出了一个降低水稻籽粒中砷含量的良好候选工具。