4hus Citations

Potential for reduction of streptogramin A resistance revealed by structural analysis of acetyltransferase VatA.

Antimicrob Agents Chemother 58 7083-92 (2014)
Related entries: 4hur, 4myo

Cited: 13 times
EuropePMC logo PMID: 25223995

Abstract

Combinations of group A and B streptogramins (i.e., dalfopristin and quinupristin) are "last-resort" antibiotics for the treatment of infections caused by Gram-positive pathogens, including methicillin-resistant Staphylococcus aureus and vancomycin-resistant Enterococcus faecium. Resistance to streptogramins has arisen via multiple mechanisms, including the deactivation of the group A component by the large family of virginiamycin O-acetyltransferase (Vat) enzymes. Despite the structural elucidation performed for the VatD acetyltransferase, which provided a general molecular framework for activity, a detailed characterization of the essential catalytic and antibiotic substrate-binding determinants in Vat enzymes is still lacking. We have determined the crystal structure of S. aureus VatA in apo, virginiamycin M1- and acetyl-coenzyme A (CoA)-bound forms and provide an extensive mutagenesis and functional analysis of the structural determinants required for catalysis and streptogramin A recognition. Based on an updated genomic survey across the Vat enzyme family, we identified key conserved residues critical for VatA activity that are not part of the O-acetylation catalytic apparatus. Exploiting such constraints of the Vat active site may lead to the development of streptogramin A compounds that evade inactivation by Vat enzymes while retaining binding to their ribosomal target.

Articles - 4hus mentioned but not cited (5)

  1. Synthetic group A streptogramin antibiotics that overcome Vat resistance. Li Q, Pellegrino J, Lee DJ, Tran AA, Chaires HA, Wang R, Park JE, Ji K, Chow D, Zhang N, Brilot AF, Biel JT, van Zundert G, Borrelli K, Shinabarger D, Wolfe C, Murray B, Jacobson MP, Mühle E, Chesneau O, Fraser JS, Seiple IB. Nature 586 145-150 (2020)
  2. Potential for reduction of streptogramin A resistance revealed by structural analysis of acetyltransferase VatA. Stogios PJ, Kuhn ML, Evdokimova E, Courvalin P, Anderson WF, Savchenko A. Antimicrob Agents Chemother 58 7083-7092 (2014)
  3. Structural and functional characterization of three Type B and C chloramphenicol acetyltransferases from Vibrio species. Alcala A, Ramirez G, Solis A, Kim Y, Tan K, Luna O, Nguyen K, Vazquez D, Ward M, Zhou M, Mulligan R, Maltseva N, Kuhn ML. Protein Sci 29 695-710 (2020)
  4. ApmA Is a Unique Aminoglycoside Antibiotic Acetyltransferase That Inactivates Apramycin. Bordeleau E, Stogios PJ, Evdokimova E, Koteva K, Savchenko A, Wright GD. mBio 12 e02705-20 (2021)
  5. Overcoming antibiotic resistance through efficient and scalable total synthesis. Jiao Y, Luo T. Natl Sci Rev 9 nwac029 (2022)


Articles citing this publication (8)

  1. Freshwater viral metagenome reveals novel and functional phage-borne antibiotic resistance genes. Moon K, Jeon JH, Kang I, Park KS, Lee K, Cha CJ, Lee SH, Cho JC. Microbiome 8 75 (2020)
  2. Phenotypic and molecular assessment of antimicrobial resistance profile of airborne Staphylococcus spp. isolated from flats in Kraków. Lenart-Boroń A, Wolny-Koładka K, Juraszek K, Kasprowicz A. Aerobiologia (Bologna) 33 435-444 (2017)
  3. Discovery of Furanoquinone Derivatives as a Novel Class of DNA Polymerase and Gyrase Inhibitors for MRSA Eradication in Cutaneous Infection. Yang SC, Tang KW, Lin CH, Alalaiwe A, Tseng CH, Fang JY. Front Microbiol 10 1197 (2019)
  4. Genome sequence and comparative analysis of Bacillus cereus BC04, reveals genetic diversity and alterations for antimicrobial resistance. Srinivasan VB, Angrasan M, Chandel N, Rajamohan G. Funct Integr Genomics 18 477-487 (2018)
  5. Hunted Wild Boars in Sardinia: Prevalence, Antimicrobial Resistance and Genomic Analysis of Salmonella and Yersinia enterocolitica. Siddi G, Piras F, Meloni MP, Gymoese P, Torpdahl M, Fredriksson-Ahomaa M, Migoni M, Cabras D, Cuccu M, De Santis EPL, Scarano C. Foods 13 65 (2023)
  6. Mechanistic plasticity in ApmA enables aminoglycoside promiscuity for resistance. Bordeleau E, Stogios PJ, Evdokimova E, Koteva K, Savchenko A, Wright GD. Nat Chem Biol (2023)
  7. Comment Modular synthesis enables molecular ju-jitsu in the fight against antibiotic resistance. Blair DJ, Burke MD. Nature 586 32-33 (2020)
  8. Modular synthesis of streptogramin antibiotics. Li Q, Seiple IB. Synlett 32 647-654 (2021)