PsaF Is a Membrane-Localized PH Sensor That Regulates Expression in
Overview
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The Yersinia pestis pH 6 antigen (PsaA) forms fimbria-like structures and is required for full virulence during bubonic plague. High temperature and low pH regulate PsaA production, and while recent work has uncovered the molecular aspects of temperature control, the mechanisms underlying this unusual regulation by pH are poorly understood. Using defined growth conditions, we recently showed that high levels of PsaE and PsaF (two regulatory proteins required for expression of ) are present at mildly acidic pH, but these levels are greatly reduced at neutral pH, resulting in low expression. In prior work, the use of translational reporters suggested that pH had no impact on translation of and , but rather affected protein stability of PsaE and/or PsaF. Here, we investigated the pH-dependent posttranslational mechanisms predicted to regulate PsaE and PsaF stability. Using antibodies that recognize the endogenous proteins, we showed that the amount of PsaE and PsaF is defined by a distinct pH threshold. Analysis of histidine residues in the periplasmic domain of PsaF suggested that it functions as a pH sensor and indicated that the presence of PsaF is important for PsaE stability. At neutral pH, when PsaF is absent, PsaE appears to be targeted for proteolytic degradation by regulated intramembrane proteolysis. Together, our work shows that Y. pestis utilizes PsaF as a pH sensor to control expression by enhancing the stability of PsaE, an essential regulatory protein. Yersinia pestis is a bacterial pathogen that causes bubonic plague in humans. As Y. pestis cycles between fleas and mammals, it senses the environment within each host to appropriately control gene expression. PsaA is a protein that forms fimbria-like structures and is required for virulence. High temperature and low pH together stimulate transcription by increasing the levels of two essential integral membrane regulators, PsaE and PsaF. Histidine residues in the PsaF periplasmic domain enable it to function as a pH sensor. In the absence of PsaF, PsaE (a DNA-binding protein) appears to be targeted for proteolytic degradation, thus preventing expression of . This work offers insight into the mechanisms that bacteria use to sense pH and control virulence gene expression.
Determinants of bacterial survival and proliferation in blood.
Le-Bury P, Echenique-Rivera H, Pizarro-Cerda J, Dussurget O FEMS Microbiol Rev. 2024; 48(3).
PMID: 38734892 PMC: 11163986. DOI: 10.1093/femsre/fuae013.
Transmembrane Transcription Regulators Are Widespread in Bacteria and Archaea.
Demey L, Gumerov V, Xing J, Zhulin I, DiRita V Microbiol Spectr. 2023; 11(3):e0026623.
PMID: 37154724 PMC: 10269533. DOI: 10.1128/spectrum.00266-23.
Regulation of yeast Snf1 (AMPK) by a polyhistidine containing pH sensing module.
Simpson-Lavy K, Kupiec M iScience. 2022; 25(10):105083.
PMID: 36147951 PMC: 9486060. DOI: 10.1016/j.isci.2022.105083.
Kinch L, Cong Q, Jaishankar J, Orth K Proc Natl Acad Sci U S A. 2022; 119(24):e2203176119.
PMID: 35648808 PMC: 9214523. DOI: 10.1073/pnas.2203176119.
Dissecting Locus Regulation in Yersinia pestis.
Li P, Wang X, Smith C, Shi Y, Wade J, Sun W J Bacteriol. 2021; 203(19):e0023721.
PMID: 34280001 PMC: 8425409. DOI: 10.1128/JB.00237-21.