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Overexpressing both ATP sulfurylase and selenocysteine methyltransferase enhances selenium phytoremediation traits in Indian mustard

机译:过表达ATP硫化酶和硒代半胱氨酸甲基转移酶可增强印度芥菜中硒的植物修复特性

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A major goal of our selenium (Se) phytoremediation research is to use genetic engineering to develop fast-growing plants with an increased ability to tolerate, accumulate, and volatilize Se. To this end we incorporated a gene (encoding selenocysteine methyltransferase, SMT) from the Se hyperaccumulator, Astragalus bisulcatus, into Indian mustard (LeDuc, D.L., Tarun, A.S., Montes-Bayon, M., Meija, J., Malit, M.F., Wu, C.P., AbdelSamie, M., Chiang, C.-Y., Tagmount, A., deSouza, M., Neuhierl, B., Boeck, A., Caruso, J., Terry, N., 2004. Overexpression of selenocysteine methyltransferase in Arabidopsis and Indian mustard increases selenium tolerance and accumulation Plant Physiol. 135, 377-383.). The resulting transgenic plants successfully enhanced Se phytoremediation in that the plants tolerated and accumulated Se from selenite significantly better than wild type. However, the advantage conferred by the SMT enzyme was much less when Se was supplied as selenate. In order to enhance the phytoremediation of selenate, we developed double transgenic plants that overexpressed the gene encoding ATP sulfurylase (APS) in addition to SMT, i.e., APS x SMT. The results showed that there was a substantial improvement in Se accumulation from selenate (4 to 9 times increase) in transgenic plants Overexpressing both APS and SMT.
机译:我们硒(Se)植物修复研究的主要目标是利用基因工程来开发快速生长的植物,这些植物具有更高的耐受,积累和挥发硒的能力。为此,我们将来自Se超级蓄积物Astragalus bisulcatus的基因(编码硒代半胱氨酸甲基转移酶,SMT)掺入了印度芥菜(LeDuc,DL,Tarun,AS,Montes-Bayon,M.,Meija,J.,Malit,MF, Wu,CP,AbdelSamie,M.,Chiang,C.-Y.,Tagmount,A.,deSouza,M.,Neuhierl,B.,Boeck,A.,Caruso,J.,Terry,N.,2004。过表达拟南芥和印度芥菜中的半胱氨酸半胱氨酸甲基转移酶含量的增加,提高了硒的耐受性和积累量(植物生理学杂志,135,377-383。)。所得的转基因植物成功地增强了Se的植物修复作用,因为该植物对亚硒酸盐的Se耐受和积累能力明显优于野生型。但是,当硒作为硒酸盐供应时,SMT酶带来的优势要少得多。为了增强硒酸盐的植物修复作用,我们开发了双重转基因植物,除了SMT(即APS x SMT)外,它们还过表达编码ATP硫酰化酶(APS)的基因。结果表明,在过表达APS和SMT的转基因植物中,硒酸盐中硒的积累有显着改善(增加4到9倍)。

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