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两种不同的机制参与了日本慢生根瘤菌伴侣蛋白基因表达的热休克调节。

Two different mechanisms are involved in the heat-shock regulation of chaperonin gene expression in Bradyrhizobium japonicum.

作者信息

Babst M, Hennecke H, Fischer H M

机构信息

Mikrobiologisches Institut, Eidgenossische Technische Hochschule, Zurich, Switzerland.

出版信息

Mol Microbiol. 1996 Feb;19(4):827-39. doi: 10.1046/j.1365-2958.1996.438968.x.

Abstract

Heat-shock regulation was detected for three out of the five members of the groESL multigene family in Bradyrhizobium japonicum. The results uncovered the simultaneous presence of two distinct heat-shock control systems which so far have not been reported to co-exist in a single prokaryotic organism. The first system concerns groESL1 whose transcription is controlled in a sigma32-dependent manner similar to that known from work done with Escherichia coli. Heat-shock control of groESL4 is mediated by the second system, which is characterized by an inverted-repeat DNA structure originally described as a heat-shock regulatory element (CIRCE) in Bacillus subtilis. This element represses expression of groESL4 under non-stress conditions, as inferred from the increased expression of a groESL4'-'lacZ fusion suffering a 4 bp deletion within the CIRCE element. The two control systems clearly differ with respect to the temperature dependence and the kinetics of the heat-shock response, and they also respond differently to the stress signal elicited by incorporation of the amino acid analogue p-F-phenylalanine into cellular protein. Knock-out mutations in groEL4 resulted in an increased expression of groESL4, suggesting that repression via CIRCE depends, itself, upon the cellular level of GroEL4 protein.

摘要

在日本慢生根瘤菌中,groESL多基因家族的五个成员中有三个检测到热休克调节。结果发现同时存在两种不同的热休克控制系统,迄今为止尚未报道在单个原核生物中共存。第一个系统涉及groESL1,其转录以σ32依赖性方式控制,类似于在大肠杆菌中所做工作中已知的方式。groESL4的热休克控制由第二个系统介导,其特征是具有反向重复DNA结构,最初在枯草芽孢杆菌中被描述为热休克调节元件(CIRCE)。从CIRCE元件内有4 bp缺失的groESL4'-'lacZ融合体表达增加推断,该元件在非应激条件下抑制groESL4的表达。这两种控制系统在温度依赖性和热休克反应动力学方面明显不同,并且它们对通过将氨基酸类似物对氟苯丙氨酸掺入细胞蛋白质而引发的应激信号的反应也不同。groEL4中的敲除突变导致groESL4表达增加,这表明通过CIRCE的抑制本身取决于GroEL4蛋白的细胞水平。

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