The opportunistic pathogen Pseudomonas aeruginosa exploits bacterial biotin synthesis pathway to benefit its
Yu Shi1, Qin Cao2,3, Jingdu Sun1,4
1Department of Microbiology, and Department of General Intensive Care Unit of the Second Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, Zhejiang, China.
Abstract:
Pseudomonas aeruginosa is an opportunistic pathogen that predominantly causes nosocomial and community-acquired lung infections. As a member of ESKAPE pathogens, carbapenem-resistant P. aeruginosa (CRPA) compromises the limited therapeutic options, raising an urgent demand for the development of lead compounds against previously-unrecognized drug targets. Biotin is an important cofactor, of which the de novo synthesis is an attractive antimicrobial target in certain recalcitrant infections. Here we report genetic and biochemical definition of P. aeruginosa BioH (PA0502) that functions as a gatekeeper enzyme allowing the product pimeloyl-ACP to exit from fatty acid synthesis cycle and to enter the late stage of biotin synthesis pathway. In relative to Escherichia coli, P. aeruginosa physiologically requires 3-fold higher level of cytosolic biotin, which can be attributed to the occurrence of multiple biotinylated enzymes. The BioH protein enables the in vitro reconstitution of biotin synthesis. The repertoire of biotin abundance is assigned to different mouse tissues and/or organ contents, and the plasma biotin level of mouse is around 6-fold higher than that of human. Removal of bioH renders P. aeruginosa biotin auxotrophic and impairs its intra-phagosome persistence. Based on a model of CD-1 mice mimicking the human environment, lung challenge combined with systemic infection suggested that BioH is necessary for the full virulence of P. aeruginosa. As expected, the biotin synthesis inhibitor MAC13772 is capable of dampening the viability of CRPA. Notably, MAC13772 interferes the production of pyocyanin, an important virulence factor of P. aeruginosa. Our data expands our understanding of P. aeruginosa biotin synthesis relevant to bacterial infectivity. In particular, this study represents the first example of an extracellular pathogen P. aeruginosa that exploits biotin cofactor as a fitness determinant, raising the possibility of biotin synthesis as an anti-CRPA target.
Insights
Pseudomonas aeruginosa
Area of Science:
- Microbiology
- Biochemistry
- Infectious Diseases
Background:
- Pseudomonas aeruginosa is a major cause of hospital-acquired infections.
- Carbapenem-resistant P. aeruginosa (CRPA) presents a significant treatment challenge.
- Biotin synthesis is a potential antimicrobial target.
Purpose of the Study:
- To define the role of P. aeruginosa BioH in biotin synthesis and virulence.
- To investigate biotin synthesis as a target for anti-CRPA strategies.
Main Methods:
- Genetic and biochemical characterization of P. aeruginosa BioH.
- In vitro reconstitution of biotin synthesis.
- Virulence studies in a mouse model.
- Evaluation of a biotin synthesis inhibitor (MAC13772).
Main Results:
- P. aeruginosa BioH acts as a gatekeeper in biotin synthesis.
- P. aeruginosa requires higher biotin levels than E. coli.
- Deletion of bioH leads to biotin auxotrophy and reduced virulence.
- The inhibitor MAC13772 reduces CRPA viability and pyocyanin production.
Conclusions:
- BioH is essential for P. aeruginosa virulence.
- Biotin synthesis is a promising target for combating CRPA infections.
- Targeting biotin synthesis offers a novel strategy against P. aeruginosa.
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