An essential protease, FtsH, influences daptomycin resistance acquisition in Enterococcus faecalis

Author:

Nair Zeus Jaren1234ORCID,Gao Iris Hanxing24,Firras Aslam24,Chong Kelvin Kian Long23,Hill Eric D.5,Choo Pei Yi24,Colomer‐Winter Cristina6,Chen Qingyan24,Manzano Caroline6,Pethe Kevin1278,Kline Kimberly A.1246ORCID

Affiliation:

1. Singapore‐MIT Alliance for Research and Technology, Antimicrobial Drug Resistance Interdisciplinary Research Group Singapore Singapore

2. Singapore Centre for Environmental Life Sciences Engineering Nanyang Technological University Singapore Singapore

3. Interdisciplinary Graduate Programme, Graduate College Nanyang Technological University Singapore Singapore

4. School of Biological Sciences Nanyang Technological University Singapore Singapore

5. Singapore Centre for Environmental Life Sciences Engineering National University of Singapore Singapore Singapore

6. Department of Microbiology and Molecular Medicine University of Geneva Geneva Switzerland

7. Lee Kong Chian School of Medicine Nanyang Technological University Singapore Singapore

8. National Centre for Infectious Diseases (NCID) Singapore Singapore

Abstract

AbstractDaptomycin is a last‐line antibiotic commonly used to treat vancomycin‐resistant Enterococci, but resistance evolves rapidly and further restricts already limited treatment options. While genetic determinants associated with clinical daptomycin resistance (DAPR) have been described, information on factors affecting the speed of DAPR acquisition is limited. The multiple peptide resistance factor (MprF), a phosphatidylglycerol‐modifying enzyme involved in cationic antimicrobial resistance, is linked to DAPR in pathogens such as methicillin‐resistant Staphylococcus aureus. Since Enterococcus faecalis encodes two paralogs of mprF and clinical DAPR mutations do not map to mprF, we hypothesized that functional redundancy between the paralogs prevents mprF‐mediated resistance and masks other evolutionary pathways to DAPR. Here, we performed in vitro evolution to DAPR in mprF mutant background. We discovered that the absence of mprF results in slowed DAPR evolution and is associated with inactivating mutations in ftsH, resulting in the depletion of the chaperone repressor HrcA. We also report that ftsH is essential in the parental, but not in the ΔmprF, strain where FtsH depletion results in growth impairment in the parental strain, a phenotype associated with reduced extracellular acidification and reduced ability for metabolic reduction. This presents FtsH and HrcA as enticing targets for developing anti‐resistance strategies.

Funder

Ministry of Education - Singapore

Singapore-MIT Alliance for Research and Technology Centre

National Medical Research Council

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Wiley

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