Matte Allan, Jia Zongchao, Sunita S, Sivaraman J, Cygler Miroslaw
Biotechnology Research Institute, National Research Council Canada, Montreal, QC, Canada.
J Struct Funct Genomics. 2007 Sep;8(2-3):45-55. doi: 10.1007/s10969-007-9019-2. Epub 2007 Aug 1.
Escherichia coli has historically been an important organism for understanding a multitude of biological processes, and represents a model system as we attempt to simulate the workings of living cells. Many E. coli strains are also important human and animal pathogens for which new therapeutic strategies are required. For both reasons, a more complete and comprehensive understanding of the protein structure complement of E. coli is needed at the genome level. Here, we provide examples of insights into the mechanism and function of bacterial proteins that we have gained through the Bacterial Structural Genomics Initiative (BSGI), focused on medium-throughput structure determination of proteins from E. coli. We describe the structural characterization of several enzymes from the histidine biosynthetic pathway, the structures of three pseudouridine synthases, enzymes that synthesize one of the most abundant modified bases in RNA, as well as the combined use of protein structure and focused functional analysis to decipher functions for hypothetical proteins. Together, these results illustrate the power of structural genomics to contribute to a deeper biological understanding of bacterial processes.
从历史角度来看,大肠杆菌一直是理解众多生物过程的重要生物体,并且在我们尝试模拟活细胞的运作时代表了一个模型系统。许多大肠杆菌菌株也是重要的人类和动物病原体,需要针对它们开发新的治疗策略。出于这两个原因,在基因组水平上需要对大肠杆菌的蛋白质结构互补体有更完整和全面的了解。在此,我们提供了一些通过细菌结构基因组学计划(BSGI)获得的有关细菌蛋白质机制和功能见解的示例,该计划专注于对大肠杆菌蛋白质进行中等通量的结构测定。我们描述了组氨酸生物合成途径中几种酶的结构特征、三种假尿苷合酶的结构,这些酶合成RNA中最丰富的修饰碱基之一,以及结合使用蛋白质结构和重点功能分析来解读假设蛋白质的功能。这些结果共同说明了结构基因组学对于深入理解细菌过程的生物学意义。