Energetics of Pathogenic Bacteria and Opportunities for Drug Development

被引:102
作者
Cook, Gregory M. [1 ,2 ]
Greening, Chris [1 ]
Hards, Kiel [1 ]
Berney, Michael [3 ]
机构
[1] Univ Otago, Dept Microbiol & Immunol, Otago Sch Med Sci, Dunedin, New Zealand
[2] Univ Auckland, Maurice Wilkins Ctr Mol Biodiscovery, Auckland 1, New Zealand
[3] Albert Einstein Coll Med, Dept Microbiol & Immunol, Bronx, NY 10467 USA
来源
ADVANCES IN MICROBIAL PHYSIOLOGY, VOL 65: ADVANCES IN BACTERIAL PATHOGEN BIOLOGY | 2014年 / 65卷
关键词
ENTERICA SEROVAR TYPHIMURIUM; CYTOCHROME-BD OXIDASE; COMPLETE GENOME SEQUENCE; SMALL COLONY VARIANTS; OXIDOREDUCTASE COMPLEX-I; TRICARBOXYLIC-ACID CYCLE; NITRITE REDUCTASE NIRBD; ESCHERICHIA-COLI CYDDC; NA+-TRANSLOCATING NADH; HIGH-OXYGEN-AFFINITY;
D O I
10.1016/bs.ampbs.2014.08.001
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The emergence and spread of drug-resistant pathogens and our inability to develop new antimicrobials to overcome resistance has inspired scientists to consider new targets for drug development. Cellular bioenergetics is an area showing promise for the development of new antimicrobials, particularly in the discovery of new anti-tuberculosis drugs where several new compounds have entered clinical trials. In this review, we have examined the bioenergetics of various bacterial pathogens, highlighting the versatility of electron donor and acceptor utilisation and the modularity of electron transport chain components in bacteria. In addition to re-examining classical concepts, we explore new literature that reveals the intricacies of pathogen energetics, for example, how Salmonella enter/ca and Cam pylobacter jejuni exploit host and microbiota to derive powerful electron donors and sinks; the strategies Mycobacterium tuberculosis and Pseudomonas deruginosa use to persist in lung tissues; and the importance of sodium energetics and electron bifurcation in the chemiosmotic anaerobe Fusobacterium nucleatum. A combination of physiological, biochemical, and pharmacological data suggests that, in addition to the clinically-approved target F1F0-ATP synthase, NADH dehydrogenase type II, succinate dehydrogenase, hydrogenase, cytochrome bd oxidase, and menaquinone biosynthesis pathways are particularly promising next-generation drug targets. The realisation of cellular energetics as a rich target space for the development of new antimicrobials will be dependent upon gaining increased understanding of the energetic processes utilised by pathogens in host environments and the ability to design bacterial-specific inhibitors of these processes.
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页码:1 / 62
页数:62
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