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小麦灌浆过程中的锌同位素分馏以及相同土壤-植物系统中锌和镉同位素比值的比较。

Zinc isotope fractionation during grain filling of wheat and a comparison of zinc and cadmium isotope ratios in identical soil-plant systems.

机构信息

Institute of Agricultural Sciences, ETH Zürich, Eschikon 33, CH-8315, Lindau, Switzerland.

Institute of Geography, University of Bern, Hallerstr. 12, CH-3012, Bern, Switzerland.

出版信息

New Phytol. 2018 Jul;219(1):195-205. doi: 10.1111/nph.15146. Epub 2018 Apr 26.

Abstract

Remobilization of zinc (Zn) from shoot to grain contributes significantly to Zn grain concentrations and thereby to food quality. On the other hand, strong accumulation of cadmium (Cd) in grain is detrimental for food quality. Zinc concentrations and isotope ratios were measured in wheat shoots (Triticum aestivum) at different growth stages to elucidate Zn pathways and processes in the shoot during grain filling. Zinc mass significantly decreased while heavy Zn isotopes accumulated in straw during grain filling (Δ Zn  = 0.21-0.31‰). Three quarters of the Zn mass in the shoot moved to the grains, which were enriched in light Zn isotopes relative to the straw (Δ Zn -0.21 to -0.31‰). Light Zn isotopes accumulated in phloem sinks while heavy isotopes were retained in phloem sources likely because of apoplastic retention and compartmentalization. Unlike for Zn, an accumulation of heavy Cd isotopes in grains has previously been shown. The opposing isotope fractionation of Zn and Cd might be caused by distinct affinities of Zn and Cd to oxygen, nitrogen, and sulfur ligands. Thus, combined Zn and Cd isotope analysis provides a novel tool to study biochemical processes that separate these elements in plants.

摘要

锌(Zn)从植物地上部分向籽粒的再转运对籽粒中锌的浓度有重要贡献,从而影响食物的质量。另一方面,镉(Cd)在籽粒中的大量积累对食物质量有害。本研究在不同的生长阶段测量了小麦地上部分(Triticum aestivum)的锌浓度和同位素比值,以阐明籽粒灌浆过程中地上部分的锌途径和过程。在籽粒灌浆过程中,秸秆中的锌质量显著减少,而重锌同位素积累(Δ Zn = 0.21-0.31‰)。四分之三的锌质量转移到籽粒中,与秸秆相比,籽粒中轻锌同位素富集(Δ Zn -0.21 至 -0.31‰)。轻锌同位素在韧皮部库中积累,而重同位素则保留在韧皮部源中,这可能是由于质外体保留和区室化。与 Zn 不同,先前已经表明 Cd 的重同位素在籽粒中积累。Zn 和 Cd 的相反同位素分馏可能是由于 Zn 和 Cd 与氧、氮和硫配体的不同亲和力造成的。因此,结合 Zn 和 Cd 同位素分析为研究在植物中分离这些元素的生化过程提供了一种新工具。

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