A 3’UTR-derived small RNA modulates the life cycle of the cholera toxin–encoding filamentous phage, CTXϕ

A Anne Lippegaus (Institute of Microbiology, General Microbiology, Friedrich Schiller University) J James R.J. Haycocks (Institute of Microbiology and Infection, School of Biosciences, University of Birmingham) E Eoghan O’Driscoll (Institute of Microbiology, General Microbiology, Friedrich Schiller University) M Marcel Sprenger (Institute of Microbiology, General Microbiology, Friedrich Schiller University) K Kerstin Thriene (Institute of Microbiology, General Microbiology, Friedrich Schiller University) E Elke-Martina Jung (Institute of Microbiology, General Microbiology, Friedrich Schiller University) M Malte Siemers (Institute of Microbiology, General Microbiology, Friedrich Schiller University) S Sebastian Krautwurst (Institute of Microbiology, General Microbiology, Friedrich Schiller University) D David C. Grainger (Institute of Microbiology and Infection, School of Biosciences, University of Birmingham) K Kai Papenfort (Institute of Microbiology, General Microbiology, Friedrich Schiller University)

Abstract

Bacteriophages (phages) are well known to be one of the major driving forces in bacterial evolution. This also applies to virulent microorganisms, such as the major human pathogen Vibrio cholerae , whose pathogenic potential and epidemic proliferation largely depends on the interaction with environmental phages. Specifically, integration of the CTXϕ phage genome into the first chromosome of V. cholerae also introduced the ctxAB genes, encoding the primary toxin responsible for the severe acute diarrheal disease, cholera. Whereas the mechanisms underlying CTXϕ-associated horizontal gene transfer and transcriptional control of the ctxAB genes have been intensively studied over the past years, posttranscriptional regulation affecting the CTXϕ life cycle has not been documented. Here, we report the identification and characterization of the CisR small RNA (sRNA) that is produced from the 3’UTR (untranslated region) of the prtV gene and inhibits the expression of the CTXϕ-encoded cep mRNA. CisR-mediated repression of cep involves Hfq-assisted base-pairing of the two transcripts and results in reduced CTXϕ production under stress conditions. We further demonstrate that transcription of prtV-cisR requires both the master quorum-sensing regulator HapR and CRP (cAMP receptor protein), a global regulator of carbon metabolism. Taken together, our work provides evidence that V. cholerae employs sRNA-mediated posttranscriptional gene regulation to coordinate CTXϕ activation with both cell density and nutrient availability.

Article Details

Volume / Issue Vol. 123, Issue 23
Published June 09, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

A

Anne Lippegaus

Institute of Microbiology, General Microbiology, Friedrich Schiller University

J

James R.J. Haycocks

Institute of Microbiology and Infection, School of Biosciences, University of Birmingham

E

Eoghan O’Driscoll

Institute of Microbiology, General Microbiology, Friedrich Schiller University

M

Marcel Sprenger

Institute of Microbiology, General Microbiology, Friedrich Schiller University

K

Kerstin Thriene

Institute of Microbiology, General Microbiology, Friedrich Schiller University

E

Elke-Martina Jung

Institute of Microbiology, General Microbiology, Friedrich Schiller University

M

Malte Siemers

Institute of Microbiology, General Microbiology, Friedrich Schiller University

S

Sebastian Krautwurst

Institute of Microbiology, General Microbiology, Friedrich Schiller University

D

David C. Grainger

Institute of Microbiology and Infection, School of Biosciences, University of Birmingham

K

Kai Papenfort

Institute of Microbiology, General Microbiology, Friedrich Schiller University