Multifunctional Roles of Zinc in Cadmium Transport in Soil–Rice Systems: Novel Insights from Stable Isotope Fractionation and Gene Expression

IF 10.8 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL 环境科学与技术 Pub Date : 2024-07-05 DOI:10.1021/acs.est.4c01851
Songxiong Zhong, Xiaomin Li, Liping Fang, Jianghao Bai, Ruichuan Gao, Yao Huang, Yingmei Huang, Yuhui Liu, Chuanping Liu, Haoming Yin, Tongxu Liu, Fang Huang and Fangbai Li*, 
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Abstract

The effect of Zn on Cd accumulation in rice varies under flooding and drainage conditions, and the underlying mechanism during uptake and transport from the soil to grains remains unclear. Isotope fractionation and gene expression were investigated using pot experiments under distinct water regimes and with Zn addition to gain a deeper understanding of the molecular effects of Zn on Cd uptake and transport in rice. The higher OsHMA2 expression but constitutively lower expression of zinc-regulated, iron-regulated transporter-like protein (ZIP) family genes in roots under the drainage regime than the flooding regime caused the enrichment of nonheavy Zn isotopes in the shoots relative to roots but minimally affected Cd isotopic fractionation. Drainage regime seem to exert a striking effect on the root-to-shoot translocation of Zn rather than Cd, and increased Zn transport via OsHMA2. The changes in expression patterns in response to Zn addition were similar to those observed upon switching from the flooding to drainage regime, except for OsNRAMP1 and OsNRAMP5. However, soil solution-to-rice plants and root-to-shoot fractionation toward light Zn isotopes with Zn addition (Δ66Znrice plant-soil solution = −0.49 to −0.40‰, Δ66Znshoot-root = −0.36 to −0.27‰) indicated that Zn transport occurred via nonspecific uptake pathways and OsHMA2, respectively. Accordingly, the less pronounced and minimally varied Cd isotope fractionation suggested that OsNRAMP5 and OsHMA2 are crucial for Cd uptake and root-to-shoot transport, respectively, facilitating Cd accumulation in grains. This study demonstrated that a high Zn supply promotes Cd uptake and root-to-shoot transport in rice by sharing distinct pathways, and by utilizing a non-Zn-sensitive pathway with a high affinity for Cd.

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锌在土壤-水稻系统镉迁移中的多功能作用:稳定同位素分馏和基因表达的新见解。
在淹水和排水条件下,锌对水稻镉积累的影响各不相同,从土壤到谷粒的吸收和迁移过程中的基本机制仍不清楚。为了更深入地了解锌对水稻镉吸收和转运的分子影响,研究人员在不同水量条件下和添加锌的情况下,通过盆栽实验研究了同位素分馏和基因表达。在排水条件下,根系中 OsHMA2 的表达量比淹水条件下高,但锌调控、铁调控类转运蛋白(ZIP)家族基因的表达量却比淹水条件下低,这导致芽中的非重锌同位素相对于根系富集,但对镉同位素分馏的影响很小。排水机制似乎对锌而不是镉从根到芽的转运产生了显著影响,并增加了锌通过 OsHMA2 的转运。除 OsNRAMP1 和 OsNRAMP5 外,其他表达模式的变化与从淹水转为排水时观察到的变化相似。然而,随着锌的添加,土壤溶液-稻株和根-根对轻锌同位素的分馏(Δ66Znrice 植物-土壤溶液 = -0.49 至 -0.40‰,Δ66Znshoot-根 = -0.36至 -0.27‰)表明,锌的运输分别通过非特异性吸收途径和 OsHMA2 进行。因此,镉同位素分馏不太明显且变化很小,表明OsNRAMP5和OsHMA2分别对镉的吸收和根到根的转运至关重要,从而促进了镉在谷粒中的积累。这项研究表明,高锌供应通过共享不同的途径,并利用对镉具有高亲和力的非锌敏感途径,促进了水稻对镉的吸收和根到芽的转运。
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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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