Stochastic activation of a family of TetR type transcriptional regulators controls phenotypic heterogeneity in Acinetobacter baumannii

Author:

Pérez-Varela María1,Tierney Aimee R P1,Dawson Emma2,Hutcheson Anna R3,Tipton Kyle A1,Anderson Sarah E13ORCID,Haldopoulos Marina E456,Song Shaina3,Tomlinson Brooke R7,Shaw Lindsey N7ORCID,Weiss David S3456,Kim Minsu24ORCID,Rather Philip N134

Affiliation:

1. Department of Microbiology and Immunology, Emory University , Atlanta, GA 30322 , USA

2. Department of Physics, Emory University , Atlanta, GA 30322 , USA

3. Research Service, Atlanta VA Medical Center , Decatur, GA 30033 , USA

4. Emory Antibiotic Resistance Center, Emory University , Atlanta, GA 30322 , USA

5. Emory Vaccine Center, Emory University , Atlanta, GA 30322 , USA

6. Department of Medicine, Division of Infectious Diseases, Emory University School of Medicine , Atlanta, GA 30322 , USA

7. Department of Cell Biology, Microbiology and Molecular Biology, University of South Florida , Tampa, FL 33620 , USA

Abstract

Abstract Phenotypic heterogeneity is an important mechanism for regulating bacterial virulence, where a single regulatory switch is typically activated to generate virulent and avirulent subpopulations. The opportunistic pathogen Acinetobacter baumannii can transition at high frequency between virulent opaque (VIR-O) and avirulent translucent subpopulations, distinguished by cells that form opaque or translucent colonies. We demonstrate that expression of 11 TetR-type transcriptional regulators (TTTRs) can drive cells from the VIR-O opaque subpopulation to cells that form translucent colonies. Remarkably, in a subpopulation of VIR-O cells, four of these TTTRs were stochastically activated in different combinations to drive cells to the translucent state. The resulting translucent subvariants exhibited unique phenotypic differences and the majority were avirulent. Due to their functional redundancy, a quadruple mutant with all four of these TTTRs inactivated was required to observe a loss of switching from the VIR-O state. Further, we demonstrate a small RNA, SrvS, acts as a “rheostat,” where the levels of SrvS expression influences both the VIR-O to translucent switching frequency, and which TTTR is activated when VIR-O cells switch. In summary, this work has revealed a new paradigm for phenotypic switching in bacteria, where an unprecedented number of related transcriptional regulators are activated in different combinations to control virulence and generate unique translucent subvariants with distinct phenotypic properties.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

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