通过修改OsNRAMP5调控区,在不影响水稻生长的情况下减轻镉在水稻中的积累。

Zhenling Luo, Chao-Lei Liu, Xiaofei Yang, Jian-Kang Zhu, Chao-Feng Huang
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摘要

镉(Cd)的摄入对人类健康构成重大风险,在以大米为主食的地区,稻米受到镉污染是一个主要问题。OsNRAMP5编码负责Cd和锰(Mn)吸收的关键转运蛋白,虽然敲除OsNRAMP5可以显著减少水稻籽粒中Cd的积累,但最近的研究表明,这种敲除会对植物生长和籽粒产量产生不利影响,并由于Mn积累减少而增加对非生物和生物胁迫的脆弱性。在本研究中,我们利用CRISPR/Cas9技术对OsNRAMP5的调控区域进行修饰,目的是减少水稻籽粒中Cd的积累。我们的研究结果表明,OsNRAMP5调控区域的突变不会影响其表达模式,但会导致翻译减少。OsNRAMP5翻译量的减少有效降低了籽粒Cd积累,而Mn积累和产量等重要农艺性状不受影响。因此,我们的研究提出了一种实用可行的策略,可以在不影响锰积累或水稻总产量的情况下减少水稻籽粒中镉的积累。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mitigating cadmium accumulation in rice without compromising growth via modifying the regulatory region of OsNRAMP5.

Cadmium (Cd) intake poses a significant health risk to humans, and the contamination of rice grains with Cd is a major concern in regions where rice is a staple food. Although the knockout of OsNRAMP5, which encodes a key transporter responsible for Cd and manganese (Mn) uptake, can significantly reduce Cd accumulation in rice grains, recent studies have revealed that this knockout adversely affects plant growth, grain yield, and increases vulnerability to abiotic and biotic stresses due to reduced Mn accumulation. In this study, we employed CRISPR/Cas9 technology to modify the regulatory region of OsNRAMP5 with the aim of reducing Cd accumulation in rice grains. Our findings demonstrate that mutations in the regulatory region of OsNRAMP5 do not impact its expression pattern but result in a reduction in translation. The decreased translation of OsNRAMP5 effectively decreases grain Cd accumulation while leaving Mn accumulation and important agronomic traits, including yield, unaffected. Thus, our study presents a practical and viable strategy for reducing Cd accumulation in rice grains without compromising Mn accumulation or overall rice production.

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