Regulatory and structural mechanisms of PvrA-mediated regulation of the PQS quorum-sensing system and PHA biosynthesis inPseudomonas aeruginosa

Author:

Pan Xiaolei1ORCID,Liang Han12,Zhao Xinrui1,Zhang Qionglin12,Chen Lei3,Yue Zhuo1,Yin Liwen1,Jin Yongxin1,Bai Fang1,Cheng Zhihui1,Bartlam Mark124ORCID,Wu Weihui1ORCID

Affiliation:

1. State Key Laboratory of Medicinal Chemical Biology, Key Laboratory of Molecular Microbiology and Technology of the Ministry of Education, Department of Microbiology, College of Life Sciences, Nankai University , Tianjin  300071,  China

2. Tianjin Key Laboratory of Protein Science, Nankai University , Tianjin  300071,  China

3. Department of Plant Biology and Ecology, College of Life Science Nankai University , Tianjin  300071  China

4. Nankai International Advanced Research Institute (Shenzhen Futian) , Shenzhen , Guangdong  518045,  China

Abstract

AbstractPseudomonas aeruginosa is capable of causing acute and chronic infections in various host tissues, which depends on its abilities to effectively utilize host-derived nutrients and produce protein virulence factors and toxic compounds. However, the regulatory mechanisms that direct metabolic intermediates towards production of toxic compounds are poorly understood. We previously identified a regulatory protein PvrA that controls genes involved in fatty acid catabolism by binding to palmitoyl-coenzyme A (CoA). In this study, transcriptomic analyses revealed that PvrA activates the Pseudomonas quinolone signal (PQS) synthesis genes, while suppressing genes for production of polyhydroxyalkanoates (PHAs). When palmitic acid was the sole carbon source, mutation of pvrA reduced production of pyocyanin and rhamnolipids due to defective PQS synthesis, but increased PHA production. We further solved the co-crystal structure of PvrA with palmitoyl-CoA and identified palmitoyl-CoA-binding residues. By using pvrA mutants, we verified the roles of the key palmitoyl-CoA-binding residues in gene regulation in response to palmitic acid. Since the PQS signal molecules, rhamnolipids and PHA synthesis pathways are interconnected by common metabolic intermediates, our results revealed a regulatory mechanism that directs carbon flux from carbon/energy storage to virulence factor production, which might be crucial for the pathogenesis.

Funder

National Key Research and Development Project of China

National Science Foundation of China

Fundamental Research Funds for the Central Universities

Tianjin Graduate Scientific Research Innovation Project

Publisher

Oxford University Press (OUP)

Subject

Genetics

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