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虎尾草中金属硫蛋白-1蛋白的分离与鉴定,该蛋白可增强酿酒酵母对氧化、盐度和碳酸盐胁迫的耐受性。

Isolation and characterization of a metallothionein-1 protein in Chloris virgata Swartz that enhances stress tolerances to oxidative, salinity and carbonate stress in Saccharomyces cerevisiae.

作者信息

Nishiuchi Shunsaku, Liu Shenkui, Takano Tetsuo

机构信息

Asian Natural Environmental Science Center, The University of Tokyo, 1-1-1, Midori-cho, Nishitokyo-shi, Tokyo, 188-0002, Japan.

出版信息

Biotechnol Lett. 2007 Aug;29(8):1301-5. doi: 10.1007/s10529-007-9396-4. Epub 2007 May 22.

Abstract

Chloris virgata Swartz (C. virgata) is a gramineous wild plant that is found in alkaline soil areas in northeast China and is highly tolerant to carbonate stress. We constructed a cDNA library from C. virgata seedlings treated with NaHCO(3), and isolated a type 1 metallothionein (MT1) gene (ChlMT1: AB294238) from the library. The amino acid sequence of ChlMT1 contained 12 cysteine residues that constituted the Cys-X-Cys (X = amino acid except Cys) motifs in the N- and C-terminal regions. Northern hybridization showed that expression of ChlMT1 was induced by several abiotic stresses, from salts (NaCl and NaHCO(3)), a ROS inducer (paraquat), and metals (CuSO(4), ZnSO(4), and CoCl(2)). ChlMT1 expression in leaf was induced by 200 mM NaCl and 100 mM NaHCO(3). About 5 microM Paraquat, 500 microM Zn(2+), and 500 microM Co(2+) also induced expression of ChlMT1 in leaf after 6 h, and 100 microM Cu(2+) induced it after 24 h. Saccharomyces cerevisiae when transformed with the ChlMT1 gene had dramatically increased tolerances to salts (NaCl and NaHCO(3)) and ROS.

摘要

虎尾草(Chloris virgata Swartz,C. virgata)是一种禾本科野生植物,在中国东北的碱性土壤地区生长,对碳酸盐胁迫具有高度耐受性。我们用NaHCO₃处理虎尾草幼苗构建了一个cDNA文库,并从该文库中分离出一个1型金属硫蛋白(MT1)基因(ChlMT1:AB294238)。ChlMT1的氨基酸序列包含12个半胱氨酸残基,在N端和C端区域构成了Cys-X-Cys(X = 除半胱氨酸外的氨基酸)基序。Northern杂交显示,ChlMT1的表达受到多种非生物胁迫的诱导,包括盐(NaCl和NaHCO₃)、活性氧诱导剂(百草枯)和金属(CuSO₄、ZnSO₄和CoCl₂)。200 mM NaCl和100 mM NaHCO₃诱导叶片中ChlMT1的表达。约5 μM百草枯、500 μM Zn²⁺和500 μM Co²⁺在处理6小时后也诱导叶片中ChlMT1的表达,100 μM Cu²⁺在处理24小时后诱导其表达。用ChlMT1基因转化的酿酒酵母对盐(NaCl和NaHCO₃)和活性氧的耐受性显著提高。

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