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  4. Daptomycin-Resistant Enterococcus faecalis Diverts the Antibiotic Molecule from the Division Septum and Remodels Cell Membrane Phospholipids
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Daptomycin-Resistant Enterococcus faecalis Diverts the Antibiotic Molecule from the Division Septum and Remodels Cell Membrane Phospholipids

Journal
mBio
ISSN
2161-2129
2150-7511
Date Issued
2013
Author(s)
Truc T. Tran
Diana Panesso
Nagendra N. Mishra
Eugenia Mileykovskaya
Ziqianq Guan
MUNITA SEPULVEDA, JOSE MANUEL  
Facultad de Medicina Clínica Alemana Universidad del Desarrollo  
Jinnethe Reyes
Lorena Diaz
George M. Weinstock
Barbara E. Murray
Yousif Shamoo
William Dowhan
Arnold S. Bayer
Cesar A. Arias
Type
Resource Types::text::journal::journal article
Scopus ID
2-s2.0-84883384777
WoS ID
WOS:000326881100011
DOI
10.1128/mBio.00281-13
URL
https://investigadores.udd.cl/handle/123456789/8849
URL Institutional Repository
http://hdl.handle.net/11447/1166
Abstract
<jats:title>ABSTRACT</jats:title>
<jats:p>
Treatment of multidrug-resistant enterococci has become a challenging clinical problem in hospitals around the world due to the lack of reliable therapeutic options. Daptomycin (DAP), a cell membrane-targeting cationic antimicrobial lipopeptide, is the only antibiotic with
<jats:italic>in vitro</jats:italic>
bactericidal activity against vancomycin-resistant enterococci (VRE). However, the clinical use of DAP against VRE is threatened by emergence of resistance during therapy, but the mechanisms leading to DAP resistance are not fully understood. The mechanism of action of DAP involves interactions with the cell membrane in a calcium-dependent manner, mainly at the level of the bacterial septum. Previously, we demonstrated that development of DAP resistance in vancomycin-resistant
<jats:named-content content-type="genus-species">Enterococcus faecalis</jats:named-content>
is associated with mutations in genes encoding proteins with two main functions, (i) control of the cell envelope stress response to antibiotics and antimicrobial peptides (LiaFSR system) and (ii) cell membrane phospholipid metabolism (glycerophosphoryl diester phosphodiesterase and cardiolipin synthase). In this work, we show that these VRE can resist DAP-elicited cell membrane damage by diverting the antibiotic away from its principal target (division septum) to other distinct cell membrane regions. DAP septal diversion by DAP-resistant
<jats:named-content content-type="genus-species">E. faecalis</jats:named-content>
is mediated by initial redistribution of cell membrane cardiolipin-rich microdomains associated with a single amino acid deletion within the transmembrane protein LiaF (a member of a three-component regulatory system [LiaFSR] involved in cell envelope homeostasis). Full expression of DAP resistance requires additional mutations in enzymes
(glycerophosphoryl diester phosphodiesterase and cardiolipin synthase) that alter cell membrane phospholipid content. Our findings describe a novel mechanism of bacterial resistance to cationic antimicrobial peptides.
</jats:p>
<jats:p>
<jats:bold>IMPORTANCE</jats:bold>
The emergence of antibiotic resistance in bacterial pathogens is a threat to public health. Understanding the mechanisms of resistance is of crucial importance to develop new strategies to combat multidrug-resistant microorganisms. Vancomycin-resistant enterococci (VRE) are one of the most recalcitrant hospital-associated pathogens against which new therapies are urgently needed. Daptomycin (DAP) is a calcium-decorated antimicrobial lipopeptide whose target is the bacterial cell membrane. A current paradigm suggests that Gram-positive bacteria become resistant to cationic antimicrobial peptides via an electrostatic repulsion of the antibiotic molecule from a more positively charged cell surface. In this work, we provide evidence that VRE use a novel strategy to avoid DAP-elicited killing. Instead of “repelling” the antibiotic from the cell surface, VRE diverts the antibiotic molecule from the septum and “traps” it in distinct membrane regions. We provide genetic and biochemical bases responsible for the mechanism of resistance and disclose new targets for potential antimicrobial development.
</jats:p>
Subjects
high-dose daptomycin

; 

staphylococcus-aureus

; 

bacillus-subtilis

; 

escherichia-coli

; 

antimicrobial peptides

; 

acridine-orange

; 

streptococcus-pyogenes

; 

bactericidal activity

; 

cardiolipin domains

; 

vancomycin
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