Department of Molecular and Cellular Biology, University of Guelph, 50 Stone Road East, Guelph, ON, N1G 2W1, Canada.
Medical Research Council Centre for Medical Mycology, University of Exeter, Geoffrey Pope Building, Stocker Road, Exeter EX4 4QD, UK.
FEMS Microbiol Rev. 2021 May 5;45(3). doi: 10.1093/femsre/fuaa055.
Genetic interaction (GI) analysis is a powerful genetic strategy that analyzes the fitness and phenotypes of single- and double-gene mutant cells in order to dissect the epistatic interactions between genes, categorize genes into biological pathways, and characterize genes of unknown function. GI analysis has been extensively employed in model organisms for foundational, systems-level assessment of the epistatic interactions between genes. More recently, GI analysis has been applied to microbial pathogens and has been instrumental for the study of clinically important infectious organisms. Here, we review recent advances in systems-level GI analysis of diverse microbial pathogens, including bacterial and fungal species. We focus on important applications of GI analysis across pathogens, including GI analysis as a means to decipher complex genetic networks regulating microbial virulence, antimicrobial drug resistance and host-pathogen dynamics, and GI analysis as an approach to uncover novel targets for combination antimicrobial therapeutics. Together, this review bridges our understanding of GI analysis and complex genetic networks, with applications to diverse microbial pathogens, to further our understanding of virulence, the use of antimicrobial therapeutics and host-pathogen interactions. .
遗传相互作用 (GI) 分析是一种强大的遗传策略,它分析单基因和双基因突变细胞的适合度和表型,以剖析基因之间的上位相互作用,将基因分类到生物途径中,并描述未知功能的基因。GI 分析已在模式生物中广泛应用,用于对基因之间的上位相互作用进行基础的、系统水平的评估。最近,GI 分析已应用于微生物病原体,并在研究临床上重要的感染性生物体方面发挥了重要作用。在这里,我们回顾了不同微生物病原体的系统水平 GI 分析的最新进展,包括细菌和真菌物种。我们重点介绍了 GI 分析在病原体中的重要应用,包括 GI 分析作为一种破译调节微生物毒力、抗微生物药物耐药性和宿主-病原体动态的复杂遗传网络的手段,以及 GI 分析作为一种发现新型抗菌联合治疗靶点的方法。总的来说,这篇综述弥合了我们对 GI 分析和复杂遗传网络的理解,以及它们在不同微生物病原体中的应用,以进一步了解毒力、抗微生物治疗的应用和宿主-病原体相互作用。