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枯草芽孢杆菌中的一个冷休克蛋白家族对于细胞生长以及在最适温度和低温下的高效蛋白质合成至关重要。

A family of cold shock proteins in Bacillus subtilis is essential for cellular growth and for efficient protein synthesis at optimal and low temperatures.

作者信息

Graumann P, Wendrich T M, Weber M H, Schröder K, Marahiel M A

机构信息

Biochemie, Fachbereich Chemie, Philipps-Universität Marburg, Germany.

出版信息

Mol Microbiol. 1997 Aug;25(4):741-56. doi: 10.1046/j.1365-2958.1997.5121878.x.

Abstract

Like other bacteria, Bacillus subtilis possesses a family of homologous small acidic proteins (CspB, CspC and CspD, identity >70%) that are strongly induced in response to cold shock. We show that deletion of cspC or cspD genes did not result in a detectable phenotype; in contrast, csp double mutants exhibited severe reduction in cellular growth at 15 degrees C as well as at 37 degrees C, including impairment of survival during the stationary phase. Two-dimensional gel analysis showed that protein synthesis was deregulated in csp double mutants and that the loss of one or two CSPs led to an increase in the synthesis of the remaining CSP(s) at 37 degrees C and after cold shock, suggesting that CSPs down-regulate production of members from this protein family. A cspB/C/D triple mutant (64BCDbt) could only be generated in the presence of cspB in trans on a plasmid that was not lost, in spite of lack of antibiotic pressure, indicating that a minimum of one csp gene is essential for viability of B. subtilis. After cold shock, synthesis of CspB in 64BCDbt was drastically lower than in wild-type cells accompanied by cessation in growth and strong reduction in general protein synthesis. As CspB, CspC and CspD are shown to bind to RNA in a co-operative and interactive manner, CSPs are suggested to function as RNA chaperones facilitating the initiation of translation under optimal and low temperatures.

摘要

与其他细菌一样,枯草芽孢杆菌拥有一族同源的小酸性蛋白(CspB、CspC和CspD,同一性>70%),这些蛋白在冷休克响应中被强烈诱导。我们发现,缺失cspC或cspD基因并未导致可检测到的表型;相反,csp双突变体在15℃以及37℃时细胞生长严重降低,包括在稳定期存活能力受损。二维凝胶分析表明,csp双突变体中的蛋白质合成失调,并且缺失一个或两个CSP会导致在37℃以及冷休克后其余CSP的合成增加,这表明CSP会下调该蛋白家族成员的产生。cspB/C/D三突变体(64BCDbt)只能在质粒上反式存在cspB且质粒不会丢失的情况下产生,尽管缺乏抗生素压力,这表明至少一个csp基因对于枯草芽孢杆菌的生存能力至关重要。冷休克后,64BCDbt中CspB的合成比野生型细胞中大幅降低,同时伴随着生长停止和总体蛋白质合成的强烈减少。由于CspB、CspC和CspD被证明以协同和相互作用的方式与RNA结合,因此推测CSP作为RNA伴侣,在最佳温度和低温下促进翻译起始。

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