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鼠伤寒沙门氏菌释放因子1(RF-1)结构基因的突变会抑制细胞分裂。

Mutation in the structural gene for release factor 1 (RF-1) of Salmonella typhimurium inhibits cell division.

作者信息

Olafsson O, Ericson J U, VanBogelen R, Björk G R

机构信息

Department of Microbiology, University of Umea, Sweden.

出版信息

J Bacteriol. 1996 Jul;178(13):3829-39. doi: 10.1128/jb.178.13.3829-3839.1996.

Abstract

A temperature-sensitive mutant of Salmonella typhimurium LT2 was isolated. At the nonpermissive temperature cell division stopped and multinucleated filaments were formed. DNA, RNA, or protein synthesis was not affected until after about two generations. Different physiological conditions, such as anaerobiosis and different growth media, suppress the division deficiency at high temperatures. Certain mutations causing a reduced polypeptide chain elongation rate also suppress the division deficiency. The mutation is recessive and shown to be in the structural gene for release factor I (prfA). DNA sequencing of both the wild-type (prfA+) and mutant (prfA101) allele revealed a GC-to-AT transition in codon 168. Like other known prfA mutants, prfA101 can suppress amber mutations. The division defect in the prfA101 mutant strain could not be suppressed by overexpression of the ftsQAZ operon. Moreover, at the nonpermissive temperature the mutant shows a normal heat shock and SOS response and has a normal ppGpp level. We conclude that the prfA101-mediated defect in cell division is not directed through any of these metabolic pathways, which are all known to affect cell division. We speculate that the altered release factor I induces aberrant synthesis of an unidentified protein(s) involved in the elaborate process of septation.

摘要

分离出鼠伤寒沙门氏菌LT2的一个温度敏感突变体。在非允许温度下,细胞分裂停止并形成多核丝状体。DNA、RNA或蛋白质合成在大约两代之后才受到影响。不同的生理条件,如厌氧和不同的生长培养基,可抑制高温下的分裂缺陷。某些导致多肽链延伸速率降低的突变也可抑制分裂缺陷。该突变是隐性的,且显示位于释放因子I(prfA)的结构基因中。野生型(prfA+)和突变型(prfA101)等位基因的DNA测序揭示了密码子168处的GC到AT转换。与其他已知的prfA突变体一样,prfA101可以抑制琥珀突变。ftsQAZ操纵子的过表达不能抑制prfA101突变株中的分裂缺陷。此外,在非允许温度下,该突变体表现出正常的热休克和SOS反应,且ppGpp水平正常。我们得出结论,prfA101介导的细胞分裂缺陷并非通过任何这些已知会影响细胞分裂的代谢途径介导。我们推测,改变的释放因子I诱导了参与精细隔膜形成过程的一种未鉴定蛋白质的异常合成。

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