Li Li-Feng, Fu Luo-Jie, Lin Jian-Qun, Pang Xin, Liu Xiang-Mei, Wang Rui, Wang Zhao-Bao, Lin Jian-Qiang, Chen Lin-Xu
State Key Laboratory of Microbial Technology, School of Life Science, Shandong University, Jinan, 250100, People's Republic of China.
Appl Microbiol Biotechnol. 2017 Mar;101(5):2079-2092. doi: 10.1007/s00253-016-8026-2. Epub 2016 Dec 13.
The sulfur oxidization (Sox) system is the central sulfur oxidization pathway of phototrophic and chemotrophic sulfur-oxidizing bacteria. Regulation and function of the Sox system in the chemotrophic Paracoccus pantotrophus has been elucidated; however, to date, no information is available on the regulation of this system in the chemolithotrophic Acidithiobacillus caldus, which is widely utilized in bioleaching. We described the novel tspSR-sox-like clusters in A. caldus and other chemolithotrophic sulfur-oxidizing bacteria containing Sox systems. The highly homologous σ-dependent two-component signaling system (TspS/R), upstream of the sox operons in these novel clusters, was identified by phylogenetic analyses. A typical σ-dependent promoter, P, was identified upstream of soxX-I in the sox-I cluster of A. caldus MTH-04. The transcriptional start site (G) and the -12/-24 regions (GC/GG) of P were determined by rapid amplification of cDNA ends (5'RACE), and the upstream activator sequences (UASs; TGTCCCAAATGGGACA) were confirmed by electrophoretic mobility shift assays (EMSAs) in vitro and by UAS-probe-plasmids assays in vivo. Sequence analysis of promoter regions in tspSR-sox-like clusters revealed that there were similar σ-dependent promoters upstream of the soxX genes. Based on our results, we proposed a TspSR-mediated signal transduction and transcriptional regulation pathway for the Sox system in A. caldus. The regulation of σ-dependent two-component systems (TCSs) for Sox pathways were explained for the first time in A. caldus, A. thiooxidans, T. tepidarius, and T. denitrificans, indicating the significance of modulating the sulfur oxidization in these chemolithotrophic sulfur oxidizers.
硫氧化(Sox)系统是光合和化能营养型硫氧化细菌的核心硫氧化途径。化能营养型泛养副球菌中Sox系统的调控和功能已得到阐明;然而,迄今为止,关于这种系统在广泛用于生物浸出的化能自养嗜热嗜酸硫杆菌中的调控尚无相关信息。我们描述了嗜热嗜酸硫杆菌和其他含有Sox系统的化能自养型硫氧化细菌中的新型tspSR-sox样簇。通过系统发育分析,在这些新型簇中sox操纵子的上游鉴定出了高度同源的σ依赖性双组分信号系统(TspS/R)。在嗜热嗜酸硫杆菌MTH-04的sox-I簇中,在soxX-I上游鉴定出一个典型的σ依赖性启动子P。通过cDNA末端快速扩增(5'RACE)确定了P的转录起始位点(G)和-12 / -24区域(GC / GG),并通过体外电泳迁移率变动分析(EMSA)和体内UAS-探针-质粒分析证实了上游激活序列(UASs;TGTCCCAAATGGGACA)。tspSR-sox样簇中启动子区域的序列分析表明,soxX基因上游存在类似的σ依赖性启动子。基于我们的结果,我们提出了嗜热嗜酸硫杆菌中Sox系统的TspSR介导的信号转导和转录调控途径。首次在嗜热嗜酸硫杆菌、氧化硫硫杆菌、嗜热栖热菌和反硝化栖热菌中解释了Sox途径的σ依赖性双组分系统(TCSs)的调控,这表明在这些化能自养型硫氧化菌中调节硫氧化的重要性。