Reisenauer A, Mohr C D, Shapiro L
Department of Developmental Biology, Stanford University School of Medicine, Stanford, California 94305-5427, USA.
J Bacteriol. 1996 Apr;178(7):1919-27. doi: 10.1128/jb.178.7.1919-1927.1996.
High temperature and other environmental stresses induce the expression of several heat shock proteins in Caulobacter crescentus, including the molecular chaperones DnaJ, DnaK, GrpE, and GroEL and the Lon protease. We report here the isolation of the rpoH gene encoding a homolog of the Escherichia coli RNA polymerase sigma32 subunit, the sigma factor responsible for the transcription of heat shock promoters. The C. crescentus sigma32 homolog, predicted to be a 33.7-kDa protein, is 42% identical to E. coli sigma32 and cross-reacts with a monoclonal antibody to E. coli sigma32. Functional homology was demonstrated by complementing the temperature-sensitive growth defect of an E. coli rpoH deletion mutant with the C. crescentus rpoH gene. Immunoblot analysis showed a transient rise in sigma32 levels after a temperature shift from 30 to 42 degrees C similar to that described for E. coli. In addition, increasing the cellular content of sigma32 by introducing a plasmid-encoded copy of rpoH induced DnaK expression in C. crescentus cultures grown at 30 degrees C. The C. crescentus rpoH gene was transcribed from either of two heat shock consensus promoters. rpoH transcription and sigma32 levels increased coordinately following heat shock, indicating that transcriptional regulation contributes to sigma32 expression in this organism. Both the rpoH gene and sigma32 protein were expressed constitutively throughout the cell cycle at 30 degrees C. The isolation of rpoH provides an important tool for future studies of the role of sigma32 in the normal physiology of C. crescentus.
高温及其他环境胁迫会诱导新月柄杆菌中几种热休克蛋白的表达,包括分子伴侣DnaJ、DnaK、GrpE和GroEL以及Lon蛋白酶。我们在此报告了rpoH基因的分离,该基因编码大肠杆菌RNA聚合酶σ32亚基的同源物,即负责热休克启动子转录的σ因子。新月柄杆菌的σ32同源物预计为一种33.7 kDa的蛋白质,与大肠杆菌的σ32有42%的同一性,并且能与抗大肠杆菌σ32的单克隆抗体发生交叉反应。通过用新月柄杆菌的rpoH基因互补大肠杆菌rpoH缺失突变体的温度敏感生长缺陷,证明了功能同源性。免疫印迹分析显示,在温度从30℃转变为42℃后,σ32水平出现短暂上升,这与大肠杆菌中描述的情况相似。此外,通过引入rpoH的质粒编码拷贝来增加σ32的细胞含量,可在30℃培养的新月柄杆菌培养物中诱导DnaK表达。新月柄杆菌的rpoH基因从两个热休克共有启动子之一转录。热休克后,rpoH转录和σ32水平协同增加,表明转录调控有助于该生物体中σ32的表达。在30℃时,rpoH基因和σ32蛋白在整个细胞周期中组成性表达。rpoH的分离为未来研究σ32在新月柄杆菌正常生理学中的作用提供了一个重要工具。