Literature DB >> 31899563

Molecular mechanisms of vancomycin resistance.

Peter J Stogios1,2, Alexei Savchenko1,2,3.   

Abstract

Vancomycin and related glycopeptides are drugs of last resort for the treatment of severe infections caused by Gram-positive bacteria such as Enterococcus species, Staphylococcus aureus, and Clostridium difficile. Vancomycin was long considered immune to resistance due to its bactericidal activity based on binding to the bacterial cell envelope rather than to a protein target as is the case for most antibiotics. However, two types of complex resistance mechanisms, each comprised of a multi-enzyme pathway, emerged and are now widely disseminated in pathogenic species, thus threatening the clinical efficiency of vancomycin. Vancomycin forms an intricate network of hydrogen bonds with the d-Ala-d-Ala region of Lipid II, interfering with the peptidoglycan layer maturation process. Resistance to vancomycin involves degradation of this natural precursor and its replacement with d-Ala-d-lac or d-Ala-d-Ser alternatives to which vancomycin has low affinity. Through extensive research over 30 years after the initial discovery of vancomycin resistance, remarkable progress has been made in molecular understanding of the enzymatic cascades responsible. Progress has been driven by structural studies of the key components of the resistance mechanisms which provided important molecular understanding such as, for example, the ability of this cascade to discriminate between vancomycin sensitive and resistant peptidoglycan precursors. Important structural insights have been also made into the molecular evolution of vancomycin resistance enzymes. Altogether this molecular data can accelerate inhibitor discovery and optimization efforts to reverse vancomycin resistance. Here, we overview our current understanding of this complex resistance mechanism with a focus on the structural and molecular aspects.
© 2020 The Protein Society.

Entities:  

Keywords:  antibiotic resistance; enzymes; glycopeptides; microbiology; structural biology; vancomycin

Year:  2020        PMID: 31899563      PMCID: PMC7020976          DOI: 10.1002/pro.3819

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.725


  94 in total

Review 1.  From the regulation of peptidoglycan synthesis to bacterial growth and morphology.

Authors:  Athanasios Typas; Manuel Banzhaf; Carol A Gross; Waldemar Vollmer
Journal:  Nat Rev Microbiol       Date:  2011-12-28       Impact factor: 60.633

2.  Requirement of the VanY and VanX D,D-peptidases for glycopeptide resistance in enterococci.

Authors:  M Arthur; F Depardieu; L Cabanié; P Reynolds; P Courvalin
Journal:  Mol Microbiol       Date:  1998-11       Impact factor: 3.501

3.  vanC cluster of vancomycin-resistant Enterococcus gallinarum BM4174.

Authors:  C A Arias; P Courvalin; P E Reynolds
Journal:  Antimicrob Agents Chemother       Date:  2000-06       Impact factor: 5.191

4.  VanE, a new type of acquired glycopeptide resistance in Enterococcus faecalis BM4405.

Authors:  M Fines; B Perichon; P Reynolds; D F Sahm; P Courvalin
Journal:  Antimicrob Agents Chemother       Date:  1999-09       Impact factor: 5.191

5.  D-Alanyl-D-lactate and D-alanyl-D-alanine synthesis by D-alanyl-D-alanine ligase from vancomycin-resistant Leuconostoc mesenteroides. Effects of a phenylalanine 261 to tyrosine mutation.

Authors:  I S Park; C T Walsh
Journal:  J Biol Chem       Date:  1997-04-04       Impact factor: 5.157

6.  Genetic characterization of vanG, a novel vancomycin resistance locus of Enterococcus faecalis.

Authors:  S J McKessar; A M Berry; J M Bell; J D Turnidge; J C Paton
Journal:  Antimicrob Agents Chemother       Date:  2000-11       Impact factor: 5.191

7.  Induction of vancomycin resistance in Enterococcus faecium by non-glycopeptide antibiotics.

Authors:  N E Allen; J N Hobbs
Journal:  FEMS Microbiol Lett       Date:  1995-10-01       Impact factor: 2.742

8.  The vanZ gene of Tn1546 from Enterococcus faecium BM4147 confers resistance to teicoplanin.

Authors:  M Arthur; F Depardieu; C Molinas; P Reynolds; P Courvalin
Journal:  Gene       Date:  1995-02-27       Impact factor: 3.688

9.  Production of membrane proteins for characterisation of their pheromone-sensing and antimicrobial resistance functions.

Authors:  Aalishaa A Azam; Jean M Kinder; G Nasir Khan; Ade Alase; Pikyee Ma; Yang Liu; James R Ault; Peter J F Henderson; Babur Z Chowdhry; Bruce D Alexander; Stephen E Harding; Mary K Phillips-Jones
Journal:  Eur Biophys J       Date:  2018-07-31       Impact factor: 1.733

10.  The Pfam protein families database in 2019.

Authors:  Sara El-Gebali; Jaina Mistry; Alex Bateman; Sean R Eddy; Aurélien Luciani; Simon C Potter; Matloob Qureshi; Lorna J Richardson; Gustavo A Salazar; Alfredo Smart; Erik L L Sonnhammer; Layla Hirsh; Lisanna Paladin; Damiano Piovesan; Silvio C E Tosatto; Robert D Finn
Journal:  Nucleic Acids Res       Date:  2019-01-08       Impact factor: 16.971

View more
  25 in total

1.  A recombinant fungal defensin-like peptide-P2 combats Streptococcus dysgalactiae and biofilms.

Authors:  Qingjuan Zhang; Na Yang; Ruoyu Mao; Ya Hao; Xuanxuan Ma; Da Teng; Huan Fan; Jianhua Wang
Journal:  Appl Microbiol Biotechnol       Date:  2021-02-03       Impact factor: 4.813

Review 2.  Mechanisms of gram-positive vancomycin resistance (Review).

Authors:  Samy Selim
Journal:  Biomed Rep       Date:  2021-11-26

3.  Influence of Binary Toxin Gene Detection and Decreased Susceptibility to Antibiotics among Clostridioides difficile Strains on Disease Severity: a Single-Center Study.

Authors:  Deiziane V S Costa; Natalie V S Pham; Rachel A Hays; David T Bolick; Sophia M Goldbeck; Melinda D Poulter; Sook C Hoang; Jae H Shin; Martin Wu; Cirle A Warren
Journal:  Antimicrob Agents Chemother       Date:  2022-07-21       Impact factor: 5.938

4.  Antimicrobial Resistance and Virulence Factor of Streptococcus dysgalactiae Isolated from Clinical Bovine Mastitis Cases in Northwest China.

Authors:  Jirao Shen; Xiaohu Wu; Yayuan Yang; Yanan Lv; Xinpu Li; Xuezhi Ding; Shengyi Wang; Zuoting Yan; Yong Yan; Feng Yang; Hongsheng Li
Journal:  Infect Drug Resist       Date:  2021-08-31       Impact factor: 4.003

Review 5.  Regulation of Resistance in Vancomycin-Resistant Enterococci: The VanRS Two-Component System.

Authors:  Alexandra A Guffey; Patrick J Loll
Journal:  Microorganisms       Date:  2021-09-25

6.  Peptidoglycan editing in non-proliferating intracellular Salmonella as source of interference with immune signaling.

Authors:  Sara B Hernández; Sónia Castanheira; M Graciela Pucciarelli; Juan J Cestero; Gadea Rico-Pérez; Alberto Paradela; Juan A Ayala; Sonsoles Velázquez; Ana San-Félix; Felipe Cava; Francisco García-Del Portillo
Journal:  PLoS Pathog       Date:  2022-01-25       Impact factor: 6.823

Review 7.  Bacterial Protein Homeostasis Disruption as a Therapeutic Intervention.

Authors:  Laleh Khodaparast; Guiqin Wu; Ladan Khodaparast; Béla Z Schmidt; Frederic Rousseau; Joost Schymkowitz
Journal:  Front Mol Biosci       Date:  2021-06-02

Review 8.  Mechanisms of antibiotic resistance of Clostridioides difficile.

Authors:  Ishani Wickramage; Patrizia Spigaglia; Xingmin Sun
Journal:  J Antimicrob Chemother       Date:  2021-11-12       Impact factor: 5.758

Review 9.  Multidrug Resistance (MDR) and Collateral Sensitivity in Bacteria, with Special Attention to Genetic and Evolutionary Aspects and to the Perspectives of Antimicrobial Peptides-A Review.

Authors:  András Fodor; Birhan Addisie Abate; Péter Deák; László Fodor; Ervin Gyenge; Michael G Klein; Zsuzsanna Koncz; Josephat Muvevi; László Ötvös; Gyöngyi Székely; Dávid Vozik; László Makrai
Journal:  Pathogens       Date:  2020-06-29

Review 10.  Revisiting Antibiotic Resistance: Mechanistic Foundations to Evolutionary Outlook.

Authors:  Chowdhury M Hasan; Debprasad Dutta; An N T Nguyen
Journal:  Antibiotics (Basel)       Date:  2021-12-30
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.