Zellmeier Stephan, Schumann Wolfgang, Wiegert Thomas
Institute of Genetics, University of Bayreuth, D-95440 Bayreuth, Germany.
Mol Microbiol. 2006 Sep;61(6):1569-82. doi: 10.1111/j.1365-2958.2006.05323.x. Epub 2006 Aug 8.
The induction of Bacillus subtilis genes controlled by the extracytoplasmic function alternative sigma factor sigmaW is strongly impaired in a strain deleted for the ClpP peptidase gene and in a double knockout of the ClpX and ClpE ATPase genes. Truncated soluble forms of the sigmaW anti-sigma factor RsiW are stabilized in a clpP minus strain as revealed by the green fluorescent reporter protein fused to the N-terminus of RsiW and by pulse-chase experiments. Conserved alanine residues are present in the transmembrane region of RsiW, and mutations in these positions abolish induction of sigmaW-controlled genes. Following alkaline shock, a truncated cytoplasmic form of RsiW is detectable in a strain expressing a triple alanine mutant allele of rsiW. These data point to a mechanism where the trans-membrane segment of RsiW contains a cryptic proteolytic tag that is uncovered as a result of intramembrane proteolysis of RsiW by RasP (YluC). After RasP-clipped RsiW is detached from the membrane, this proteolytic tag becomes crucial for the complete degradation of RsiW by cytoplasmic proteases and the release of sigmaW. ClpXP plays a major role in this third proteolytic step of stress-induced degradation of RsiW. Overexpression of SsrA-tagged green fluorescent protein as a ClpXP substrate protein reduces alkali induction of a sigmaW-controlled gene by a factor of about three, indicating that a titration mechanism is able to tune the sigmaW-mediated stress response to the cellular state.
由胞质外功能替代σ因子σW控制的枯草芽孢杆菌基因的诱导,在缺失ClpP肽酶基因的菌株以及ClpX和ClpE ATP酶基因的双敲除菌株中受到严重损害。如与RsiW的N末端融合的绿色荧光报告蛋白和脉冲追踪实验所示,σW抗σ因子RsiW的截短可溶性形式在clpP缺失菌株中稳定存在。保守的丙氨酸残基存在于RsiW的跨膜区域,这些位置的突变消除了σW控制基因的诱导。碱性休克后,在表达rsiW的三重丙氨酸突变等位基因的菌株中可检测到截短的细胞质形式的RsiW。这些数据表明了一种机制,即RsiW的跨膜片段包含一个隐蔽的蛋白水解标签,该标签是由于RasP(YluC)对RsiW进行膜内蛋白水解而暴露的。在RasP切割的RsiW从膜上脱离后,这个蛋白水解标签对于细胞质蛋白酶对RsiW的完全降解和σW的释放至关重要。ClpXP在RsiW应激诱导降解的这第三步蛋白水解中起主要作用。作为ClpXP底物蛋白的SsrA标签绿色荧光蛋白的过表达将σW控制基因的碱诱导降低了约三倍,表明一种滴定机制能够根据细胞状态调节σW介导的应激反应。