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New Biofortification Tool: Wheat TaCNR5 Enhances Zinc and Manganese Tolerance and Increases Zinc and Manganese Accumulation in Rice Grains

机译:新的生物化工具:小麦TacnR5增强锌和锰耐受性,增加了锌和稻粒中的锌和锰积累

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摘要

Heavy metal contaminants and nutrient deficiencies in soil negatively affect crop growth and human health. The plant cadmium resistance (PCR) protein transports heavy metals. The abundance of PCR is correlated with that of cell number regulator (CNR) protein, and the two proteins have similar conserved domains. Hence, CNR might also participate in heavy metal transport. We isolated and analyzed TaCNR5 from wheat (Triticum aestivum). The expression level of TaCNR5 in the shoots of wheat increased under cadmium (Cd), zinc (Zn), or manganese (Mn) treatments. Transgenic plants expressing TaCNR5 showed enhanced tolerance to Zn and Mn. Overexpression of TaCNR5 in Arabidopsis increased Cd, Zn, and Mn translocation from roots to shoots. The concentrations of Zn and Mn in rice grains were increased in transgenic plants expressing TaCNR5. These roles of TaCNR5 in the translocation and distribution of heavy metals mean that it has potential as a genetic biofortification tool to fortify cereal grains with micronutrients.
机译:土壤中的重金属污染物和养分缺陷对作物生长和人类健康产生负面影响。植物钙抗性(PCR)蛋白转运重金属。 PCR的丰度与细胞数调节剂(CNR)蛋白质相关,两种蛋白质具有类似的保守结构域。因此,CNR也可能参与重金属运输。我们从小麦(Triticum aestivum)中分析了Tacnr5。小麦枝条中TacnR5的表达水平在镉(Cd),锌(Zn)或锰(Mn)处理下增加。表达TACNR5的转基因植物显示出对Zn和Mn的增强的耐受性。拟南芥中TACNR5的过度表达增加了CD,Zn和ROOTS的MN易位。在表达TACNR5的转基因植物中增加了ZN和MN中的浓度。 TACNR5在重金属易位和分布中的这些作用意味着它具有遗传生物侵入工具,以强化微量营养素的谷物。

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