Basic Medical Science, College of Osteopathic Medicine of the Pacific, Western University of Health Sciences, Pomona, CA, USA.
Mol Microbiol. 2019 Aug;112(2):432-437. doi: 10.1111/mmi.14282. Epub 2019 Jul 3.
The genomic era along with major advances in high-throughput sequencing technology has led to a rapid expansion of the genomic and consequently the protein sequence space. Bacterial extracytoplasmic function sigma factors have emerged as an important group of signaling proteins in bacteria involved in many regulatory decisions, most notably the adaptation to cell envelope stress. Their wide prevalence and amplification among bacterial genomes has led to sub-group classification and the realization of diverse signaling mechanisms. Mathematical frameworks have been developed to utilize extensive protein sequence alignments to extract co-evolutionary signals of interaction. This has proven useful in a number of different biological fields, including de novo structure prediction, protein-protein partner identification and the elucidation of alternative protein conformations for signal proteins, to name a few. The mathematical tools, commonly referred to under the name 'Direct Coupling Analysis' have now been applied to deduce molecular mechanisms of activation for sub-groups of extracytoplasmic sigma factors adding to previous successes on bacterial two-component signaling proteins. The amplification of signal transduction protein genes in bacterial genomes made them the first to be amenable to this approach but the sequences are available now to aid the molecular microbiologist, no matter their protein pathway of interest.
基因组学时代以及高通量测序技术的重大进展,使得基因组和蛋白质序列空间迅速扩大。细菌细胞外功能σ因子已成为细菌中一类重要的信号蛋白,参与许多调控决策,尤其是对细胞包膜应激的适应。它们在细菌基因组中的广泛存在和扩增导致了亚群分类,并实现了多样化的信号机制。数学框架已经被开发出来,用于利用广泛的蛋白质序列比对来提取相互作用的共进化信号。这在许多不同的生物学领域都很有用,包括从头预测结构、鉴定蛋白质-蛋白质伴侣和阐明信号蛋白的替代蛋白质构象等。这些数学工具通常被称为“直接耦联分析”,现在已经被应用于推断细胞外σ因子亚群的激活分子机制,这是继细菌双组分信号蛋白之后的又一成功应用。信号转导蛋白基因在细菌基因组中的扩增使得它们首先适用于这种方法,但现在序列已经可以帮助分子微生物学家,无论他们感兴趣的蛋白质途径是什么。