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液泡铁转运蛋白OsVIT2在铁向水稻籽粒分配中的作用。

Role of a vacuolar iron transporter OsVIT2 in the distribution of iron to rice grains.

作者信息

Che Jing, Yamaji Naoki, Ma Jian Feng

机构信息

Institute of Plant Science and Resources, Okayama University, Chuo 2-20-1, Kurashiki, 710-0046, Japan.

Institute of Soil Science, Chinese Academy of Sciences, Nanjing, Jiangsu Province, 210008, China.

出版信息

New Phytol. 2021 May;230(3):1049-1062. doi: 10.1111/nph.17219. Epub 2021 Feb 12.

Abstract

Iron (Fe) from rice grains is an important source of dietary intake; however, the molecular mechanisms responsible for loading of Fe to the grains are poorly understood. We functionally characterized a vacuolar iron transporter gene, OsVIT2 in terms of expression pattern, cellular localization, and mutant phenotypes. OsVIT2 was expressed in the parenchyma cell bridges of nodes, in the mestome sheath of leaf sheath and aleurone of the caryopsis. Mutation of OsVIT2 resulted in decreased Fe distribution to the leaf sheath, nodes, and aleurone, but increased Fe to the leaf blade and grains. Furthermore, Fe was heavily deposited in the parenchyma cell bridges, mestome sheath and aleurone in the wild-type rice, but this accumulation was decreased in the knockout lines. Conversely, heavier deposition of Fe was observed in the embryo and endosperm of the grains of knockout lines compared with the wild-type rice, resulting in increased Fe accumulation in the polished rice without yield penalty. These results indicate that OsVIT2 is involved in the distribution of Fe to the grains through sequestering Fe into vacuoles in mestome sheath, nodes, and aleurone layer and that knockout of this gene provides a potential way for Fe biofortification without yield penalty.

摘要

来自水稻籽粒的铁(Fe)是膳食摄入的重要来源;然而,负责将铁装载到籽粒中的分子机制却知之甚少。我们从表达模式、细胞定位和突变体表型等方面对一个液泡铁转运蛋白基因OsVIT2进行了功能表征。OsVIT2在节的薄壁细胞桥、叶鞘的维管束鞘和颖果的糊粉层中表达。OsVIT2突变导致铁向叶鞘、节和糊粉层的分布减少,但向叶片和籽粒的铁增加。此外,铁在野生型水稻的薄壁细胞桥、维管束鞘和糊粉层中大量沉积,但在敲除系中这种积累减少。相反,与野生型水稻相比,在敲除系籽粒的胚和胚乳中观察到铁的沉积更重,导致糙米中铁积累增加而不影响产量。这些结果表明,OsVIT2通过将铁螯合到维管束鞘、节和糊粉层的液泡中参与铁向籽粒的分配,并且该基因的敲除为在不影响产量的情况下进行铁生物强化提供了一条潜在途径。

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