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Divergent Effects of Peptidoglycan Carboxypeptidase DacA on Intrinsic beta-Lactam and Vancomycin Resistanceopen access

Authors
Park, Si HyoungChoi, UmjiRyu, Su-HyunLee, Han ByeolLee, Jin-WonLee, Chang-Ro
Issue Date
Jul-2022
Publisher
AMER SOC MICROBIOLOGY
Keywords
antibiotic resistance; peptidoglycan hydrolase; peptidoglycan carboxypeptidase; DacA; beta-lactam; vancomycin; penicillin-binding proteins; membrane permeability; decoy; D-Ala-D-Ala; LD-transpeptidase
Citation
MICROBIOLOGY SPECTRUM, v.10, no.4, pp 1 - 16
Pages
16
Indexed
SCIE
SCOPUS
Journal Title
MICROBIOLOGY SPECTRUM
Volume
10
Number
4
Start Page
1
End Page
16
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/194641
DOI
10.1128/spectrum.01734-22
ISSN
2165-0497
2165-0497
Abstract
Vancomycin and beta-lactams are clinically important antibiotics that inhibit the formation of peptidoglycan cross-links, but their binding targets are different. The binding target of vancomycin is d-alanine-d-alanine (d-Ala-d-Ala), whereas that of beta-lactam is penicillin-binding proteins (PBPs). In this study, we revealed the divergent effects of peptidoglycan (PG) carboxypeptidase DacA on vancomycin and beta-lactam resistance in Escherichia coli and Bacillus subtilis. The deletion of DacA induced sensitivity to most beta-lactams, whereas it induced strong resistance toward vancomycin. Notably, both phenotypes did not have a strong association with ld-transpeptidases, which are necessary for the formation of PG 3-3 cross-links and covalent bonds between PG and an Lpp outer membrane (OM) lipoprotein. Vancomycin resistance was induced by an increased amount of decoy d-Ala-d-Ala residues within PG, whereas beta-lactam sensitivity was associated with physical interactions between DacA and PBPs. The presence of an OM permeability barrier strongly strengthened vancomycin resistance, but it significantly weakened beta-lactam sensitivity. Collectively, our results revealed two distinct functions of DacA, which involved inverse modulation of bacterial resistance to clinically important antibiotics, beta-lactams and vancomycin, and presented evidence for a link between DacA and PBPs. IMPORTANCE Bacterial PG hydrolases play important roles in various aspects of bacterial physiology, including cytokinesis, PG synthesis, quality control of PG, PG recycling, and stress adaptation. Of all the PG hydrolases, the role of PG carboxypeptidases is poorly understood, especially regarding their impacts on antibiotic resistance. We have revealed two distinct functions of PG carboxypeptidase DacA with respect to antibiotic resistance. The deletion of DacA led to sensitivity to most beta-lactams, while it caused strong resistance to vancomycin. Our study provides novel insights into the roles of PG carboxypeptidases in the regulation of antibiotic resistance and a potential clue for the development of a drug to improve the clinical efficacy of beta-lactam antibiotics.
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