首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Poly(gamma-glutamylcysteinyl)glycine: its role in cadmium resistance in plant cells.
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Poly(gamma-glutamylcysteinyl)glycine: its role in cadmium resistance in plant cells.

机译:聚(γ-谷氨酰半胱氨酸)甘氨酸:其在植物细胞对镉的抗性中的作用。

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摘要

Angiosperms can be selected for the ability to grow in the presence of normally toxic concentrations of certain trace metal ions. Addition of Cd and Cu to Cd-resistant Datura innoxia cell cultures results in the rapid synthesis and accumulation of sulfur-rich, metal-binding polypeptides. The structure of these compounds was determined using amino acid analysis, 13C NMR, and site-specific enzymic digestion. These compounds are poly(gamma-glutamylcysteinyl)glycines. Greater than 80% of the cellular Cd is bound to the bis and tris forms in Cd-resistant cells. There is a direct correlation between the maximum accumulation of the metal-binding polypeptides and the concentration of toxic ions to which the cells are resistant. In the presence of metal ions, the polypeptides form multimeric aggregates that can be resolved by gel chromatography. Cd binds to both the high and low molecular weight aggregates, whereas Cu preferentially binds to the higher molecular weight forms. The presence of gamma-carboxamide linkages between glutamyl and adjacent cysteinyl residues indicates that these polypeptides are products of biosynthetic pathways. Poly(gamma-glutamylcysteinyl)glycines bind metals and, in this respect, appear to be functional analogs of the protein metallothionein. However, in the absence of supraoptimal concentrations of trace metal ions, the functions of metallothionein in animals and microorganisms and poly(gamma-glutamylcysteinyl)glycines in plants may differ.
机译:可以选择被子植物以在某些痕量金属离子的正常毒性浓度下生长。将Cd和Cu添加到抗Cd的曼陀罗无氧细胞培养物中可导致富含硫的金属结合多肽的快速合成和积累。这些化合物的结构使用氨基酸分析,13 C NMR和位点特异性酶消化法确定。这些化合物是聚(γ-谷氨酰基半胱氨酸)甘氨酸。大于80%的细胞Cd与抗Cd细胞中的bis和tris形式结合。金属结合多肽的最大积累量与细胞可抵抗的毒性离子浓度之间存在直接关系。在金属离子存在下,多肽形成多聚体聚集体,可通过凝胶色谱法分离。 Cd结合高分子量和低分子量聚集体,而Cu优先结合高分子量形式。谷氨酰和相邻的半胱氨酰残基之间存在γ-羧酰胺键表明这些多肽是生物合成途径的产物。聚(γ-谷氨酰半胱氨酸基)甘氨酸结合金属,并且在这方面看来是蛋白质金属硫蛋白的功能类似物。但是,在没有痕量金属离子的最佳浓度的情况下,金属硫蛋白在动物和微生物中的功能以及植物中的聚(γ-谷氨酰基半胱氨酸)甘氨酸的功能可能会有所不同。

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