Pondpan Suwanthada, Siriporn Kongsoi, Nami Miura, Lawrence P Belotindos, Chayada Piantham, Jirachaya Toyting, Mwangala L Akapelwa, Ruttana Pachanon, Kentaro Koide, Hyun Kim, Jeewan Thapa, Chie Nakajima, Yasuhiko Suzuki
{"title":"氟喹诺酮类药物1和8位取代对鼠伤寒沙门氏菌突变DNA聚合酶活性的影响。","authors":"Pondpan Suwanthada, Siriporn Kongsoi, Nami Miura, Lawrence P Belotindos, Chayada Piantham, Jirachaya Toyting, Mwangala L Akapelwa, Ruttana Pachanon, Kentaro Koide, Hyun Kim, Jeewan Thapa, Chie Nakajima, Yasuhiko Suzuki","doi":"10.1089/mdr.2023.0014","DOIUrl":null,"url":null,"abstract":"<p><p>Although many drug-resistant nontyphoidal <i>Salmonella</i> (NTS) infections are reported globally, their treatment is challenging owing to the ineffectiveness of the currently available antimicrobial drugs against resistant bacteria. It is therefore essential to discover novel antimicrobial drugs for the management of these infections. In this study, we report high inhibitory activities of the novel fluoroquinolones (FQs; WQ-3810 and WQ-3334) with substitutions at positions R-1 by 6-amino-3,5-difluoropyridine-2-yl and R-8 by methyl group or bromine, respectively, against wild-type and mutant DNA gyrases of <i>Salmonella</i> Typhimurium. The inhibitory activities of these FQs were assessed against seven amino acid substitutions in DNA gyrases conferring FQ resistance to <i>S.</i> Typhimurium, including high-level resistant mutants, Ser83Ile and Ser83Phe-Asp87Asn by <i>in vitro</i> DNA supercoiling assay. Drug concentrations of WQ compounds with 6-amino-3,5-difluoropyridine-2-yl that suppressed DNA supercoiling by 50% (IC<sub>50</sub>) were found to be ∼150-fold lower than ciprofloxacin against DNA gyrase with double amino acid substitutions. Our findings highlight the importance of the chemical structure of an FQ drug on its antimicrobial activity. Particularly, the presence of 6-amino-3,5-difluoropyridine-2-yl at R-1 and either methyl group or bromine at R-8 of WQ-3810 and WQ-3334, respectively, was associated with improved antimicrobial activity. Therefore, WQ-3810 and WQ-3334 are promising candidates for use in the treatment of patients infected by FQ-resistant <i>Salmonella</i> spp.</p>","PeriodicalId":18701,"journal":{"name":"Microbial drug resistance","volume":" ","pages":"552-560"},"PeriodicalIF":2.3000,"publicationDate":"2023-12-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The Impact of Substitutions at Positions 1 and 8 of Fluoroquinolones on the Activity Against Mutant DNA Gyrases of <i>Salmonella</i> Typhimurium.\",\"authors\":\"Pondpan Suwanthada, Siriporn Kongsoi, Nami Miura, Lawrence P Belotindos, Chayada Piantham, Jirachaya Toyting, Mwangala L Akapelwa, Ruttana Pachanon, Kentaro Koide, Hyun Kim, Jeewan Thapa, Chie Nakajima, Yasuhiko Suzuki\",\"doi\":\"10.1089/mdr.2023.0014\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Although many drug-resistant nontyphoidal <i>Salmonella</i> (NTS) infections are reported globally, their treatment is challenging owing to the ineffectiveness of the currently available antimicrobial drugs against resistant bacteria. It is therefore essential to discover novel antimicrobial drugs for the management of these infections. In this study, we report high inhibitory activities of the novel fluoroquinolones (FQs; WQ-3810 and WQ-3334) with substitutions at positions R-1 by 6-amino-3,5-difluoropyridine-2-yl and R-8 by methyl group or bromine, respectively, against wild-type and mutant DNA gyrases of <i>Salmonella</i> Typhimurium. The inhibitory activities of these FQs were assessed against seven amino acid substitutions in DNA gyrases conferring FQ resistance to <i>S.</i> Typhimurium, including high-level resistant mutants, Ser83Ile and Ser83Phe-Asp87Asn by <i>in vitro</i> DNA supercoiling assay. Drug concentrations of WQ compounds with 6-amino-3,5-difluoropyridine-2-yl that suppressed DNA supercoiling by 50% (IC<sub>50</sub>) were found to be ∼150-fold lower than ciprofloxacin against DNA gyrase with double amino acid substitutions. 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The Impact of Substitutions at Positions 1 and 8 of Fluoroquinolones on the Activity Against Mutant DNA Gyrases of Salmonella Typhimurium.
Although many drug-resistant nontyphoidal Salmonella (NTS) infections are reported globally, their treatment is challenging owing to the ineffectiveness of the currently available antimicrobial drugs against resistant bacteria. It is therefore essential to discover novel antimicrobial drugs for the management of these infections. In this study, we report high inhibitory activities of the novel fluoroquinolones (FQs; WQ-3810 and WQ-3334) with substitutions at positions R-1 by 6-amino-3,5-difluoropyridine-2-yl and R-8 by methyl group or bromine, respectively, against wild-type and mutant DNA gyrases of Salmonella Typhimurium. The inhibitory activities of these FQs were assessed against seven amino acid substitutions in DNA gyrases conferring FQ resistance to S. Typhimurium, including high-level resistant mutants, Ser83Ile and Ser83Phe-Asp87Asn by in vitro DNA supercoiling assay. Drug concentrations of WQ compounds with 6-amino-3,5-difluoropyridine-2-yl that suppressed DNA supercoiling by 50% (IC50) were found to be ∼150-fold lower than ciprofloxacin against DNA gyrase with double amino acid substitutions. Our findings highlight the importance of the chemical structure of an FQ drug on its antimicrobial activity. Particularly, the presence of 6-amino-3,5-difluoropyridine-2-yl at R-1 and either methyl group or bromine at R-8 of WQ-3810 and WQ-3334, respectively, was associated with improved antimicrobial activity. Therefore, WQ-3810 and WQ-3334 are promising candidates for use in the treatment of patients infected by FQ-resistant Salmonella spp.
期刊介绍:
Microbial Drug Resistance (MDR) is an international, peer-reviewed journal that covers the global spread and threat of multi-drug resistant clones of major pathogens that are widely documented in hospitals and the scientific community. The Journal addresses the serious challenges of trying to decipher the molecular mechanisms of drug resistance. MDR provides a multidisciplinary forum for peer-reviewed original publications as well as topical reviews and special reports.
MDR coverage includes:
Molecular biology of resistance mechanisms
Virulence genes and disease
Molecular epidemiology
Drug design
Infection control.