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首页> 外文期刊>Journal of Plant Physiology >The role of subcellular distribution of cadmium and phytochelatins in the generation of distinct phenotypes of AtPCS1-and CePCS3-expressing tobacco
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The role of subcellular distribution of cadmium and phytochelatins in the generation of distinct phenotypes of AtPCS1-and CePCS3-expressing tobacco

机译:镉和植物螯合物的亚细胞分布在表达AtPCS1和CePCS3的不同表型产生中的作用

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Exposure to Cd2+ leads to activation of phytochelatin synthase (PCS) and the formation of phytochelatins (PCs) in the cytosol. Binding of Cd by PCs and the subsequent transport of PC-Cd complexes to the vacuole are essential for Cd tolerance. Attempts to improve Cd detoxification by PCS overexpression have resulted in contrasting plant phenotypes, ranging from enhanced Cd tolerance to Cd hypersensitivity. In the present paper, changes in the subcellular phytochelatin, glutathione, gamma-glutamylcysteine and cadmium vacuolar and cytosolic distribution underlying these phenotypes were examined. Cadmium and PCs levels were determined in protoplasts and vacuoles isolated from leaves of Nicotiana tabacum expressing either of two phytochelatin synthase genes, AtPCS1 and CePCS (differing in their level of Cd tolerance: being Cd hypersensitive or more Cd-tolerant as compared to wild-type plants, respectively). We showed that Cd hypersensitivity of AtPCS1-expressing tobacco results from a significant decrease in both the cytosolic and vacuolar pool of PCs, indicating a decreased cadmium detoxification capacity. By contrast, enhanced Cd tolerance of CePCS plants was accompanied by an increased cytosolic and vacuolar SH of PC/Cd ratio, suggesting more efficient Cd detoxification. Surprisingly, the substantially reduced level of PCs did not influence Cd accumulation in vacuoles of AtPCS1-transformed tobacco (relative to the wildtype), which suggests the important role of mechanisms other than PC-Cd transport in Cd translocation to the vacuole. Our data suggest that the key role of the PCs in Cd tolerance is temporary binding of Cd2+ in the cytosol, and contrary to the current view, their contribution to cadmium sequestration seems to be less important
机译:暴露于Cd2 +会导致植物螯合素合酶(PCS)活化并在细胞质中形成植物螯合素(PCs)。 PC对Cd的结合以及随后PC-Cd复合物向液泡的转运对于Cd耐受性至关重要。尝试通过PCS过表达改善Cd解毒作用已导致植物表型形成对比,从增强的Cd耐受性到Cd超敏性不等。在本文中,检查了这些表型下的亚细胞植螯素,谷胱甘肽,γ-谷氨酰半胱氨酸和液泡镉的变化以及胞质分布。从表达两个植物螯合素合酶基因AtPCS1和CePCS的烟草叶片中分离出的原生质体和液泡中,测定镉和PCs的水平(Cd耐受水平不同:与野生型相比,Cd过敏或对Cd的耐受性更高)植物)。我们表明,表达AtPCS1的烟草的Cd超敏性是由于PC的胞质和液泡池显着减少所致,表明镉的解毒能力降低。相比之下,CePCS植物对Cd的耐受性增强,同时胞质和液泡SH的PC / Cd比率增加,表明Cd的解毒效率更高。出人意料的是,PC含量的显着降低并没有影响AtPCS1转化烟草(相对于野生型)的液泡中Cd的积累,这提示了PC-Cd转运以外的其他机制在Cd转运至液泡中的重要作用。我们的数据表明,PC在Cd耐受性中的关键作用是Cd2 +在细胞质中的暂时结合,并且与当前观点相反,它们对螯合镉的作用似乎不那么重要。

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