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Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound

We have previously reported the inhibition of bacterial topoisomerase I activity by a fluoroquinophenoxazine compound (FP-11g) with a 6-bipiperidinyl lipophilic side chain that exhibited promising antituberculosis activity (MIC = 2.5 μM against Mycobacterium tuberculosis, SI = 9.8). Here, we found t...

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Autores principales: Garcia, Pamela K., Annamalai, Thirunavukkarasu, Wang, Wenjie, Bell, Raven S., Le, Duc, Martin Pancorbo, Paula, Sikandar, Sabah, Seddek, Ahmed, Yu, Xufen, Sun, Dianqing, Uhlemann, Anne-Catrin, Tiwari, Purushottam B., Leng, Fenfei, Tse-Dinh, Yuk-Ching
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6386362/
https://www.ncbi.nlm.nih.gov/pubmed/30794538
http://dx.doi.org/10.1371/journal.pone.0207733
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author Garcia, Pamela K.
Annamalai, Thirunavukkarasu
Wang, Wenjie
Bell, Raven S.
Le, Duc
Martin Pancorbo, Paula
Sikandar, Sabah
Seddek, Ahmed
Yu, Xufen
Sun, Dianqing
Uhlemann, Anne-Catrin
Tiwari, Purushottam B.
Leng, Fenfei
Tse-Dinh, Yuk-Ching
author_facet Garcia, Pamela K.
Annamalai, Thirunavukkarasu
Wang, Wenjie
Bell, Raven S.
Le, Duc
Martin Pancorbo, Paula
Sikandar, Sabah
Seddek, Ahmed
Yu, Xufen
Sun, Dianqing
Uhlemann, Anne-Catrin
Tiwari, Purushottam B.
Leng, Fenfei
Tse-Dinh, Yuk-Ching
author_sort Garcia, Pamela K.
collection PubMed
description We have previously reported the inhibition of bacterial topoisomerase I activity by a fluoroquinophenoxazine compound (FP-11g) with a 6-bipiperidinyl lipophilic side chain that exhibited promising antituberculosis activity (MIC = 2.5 μM against Mycobacterium tuberculosis, SI = 9.8). Here, we found that the compound is bactericidal towards Mycobacterium smegmatis, resulting in greater than 5 Log(10) reduction in colony-forming units [cfu]/mL following a 10 h incubation at 1.25 μM (4X MIC) concentration. Growth inhibition (MIC = 50 μM) and reduction in cfu could also be observed against a clinical isolate of Mycobacterium abscessus. Stepwise isolation of resistant mutants of M. smegmatis was conducted to explore the mechanism of resistance. Mutations in the resistant isolates were identified by direct comparison of whole-genome sequencing data from mutant and wild-type isolates. These include mutations in genes likely to affect the entry and retention of the compound. FP-11g inhibits Mtb topoisomerase I and Mtb gyrase with IC(50) of 0.24 and 27 μM, respectively. Biophysical analysis showed that FP-11g binds DNA as an intercalator but the IC(50) for inhibition of Mtb topoisomerase I activity is >10 fold lower than the compound concentrations required for producing negatively supercoiled DNA during ligation of nicked circular DNA. Thus, the DNA-binding property of FP-11g may contribute to its antimycobacterial mechanism, but that alone cannot account for the observed inhibition of Mtb topoisomerase I.
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spelling pubmed-63863622019-03-09 Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound Garcia, Pamela K. Annamalai, Thirunavukkarasu Wang, Wenjie Bell, Raven S. Le, Duc Martin Pancorbo, Paula Sikandar, Sabah Seddek, Ahmed Yu, Xufen Sun, Dianqing Uhlemann, Anne-Catrin Tiwari, Purushottam B. Leng, Fenfei Tse-Dinh, Yuk-Ching PLoS One Research Article We have previously reported the inhibition of bacterial topoisomerase I activity by a fluoroquinophenoxazine compound (FP-11g) with a 6-bipiperidinyl lipophilic side chain that exhibited promising antituberculosis activity (MIC = 2.5 μM against Mycobacterium tuberculosis, SI = 9.8). Here, we found that the compound is bactericidal towards Mycobacterium smegmatis, resulting in greater than 5 Log(10) reduction in colony-forming units [cfu]/mL following a 10 h incubation at 1.25 μM (4X MIC) concentration. Growth inhibition (MIC = 50 μM) and reduction in cfu could also be observed against a clinical isolate of Mycobacterium abscessus. Stepwise isolation of resistant mutants of M. smegmatis was conducted to explore the mechanism of resistance. Mutations in the resistant isolates were identified by direct comparison of whole-genome sequencing data from mutant and wild-type isolates. These include mutations in genes likely to affect the entry and retention of the compound. FP-11g inhibits Mtb topoisomerase I and Mtb gyrase with IC(50) of 0.24 and 27 μM, respectively. Biophysical analysis showed that FP-11g binds DNA as an intercalator but the IC(50) for inhibition of Mtb topoisomerase I activity is >10 fold lower than the compound concentrations required for producing negatively supercoiled DNA during ligation of nicked circular DNA. Thus, the DNA-binding property of FP-11g may contribute to its antimycobacterial mechanism, but that alone cannot account for the observed inhibition of Mtb topoisomerase I. Public Library of Science 2019-02-22 /pmc/articles/PMC6386362/ /pubmed/30794538 http://dx.doi.org/10.1371/journal.pone.0207733 Text en © 2019 Garcia et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Garcia, Pamela K.
Annamalai, Thirunavukkarasu
Wang, Wenjie
Bell, Raven S.
Le, Duc
Martin Pancorbo, Paula
Sikandar, Sabah
Seddek, Ahmed
Yu, Xufen
Sun, Dianqing
Uhlemann, Anne-Catrin
Tiwari, Purushottam B.
Leng, Fenfei
Tse-Dinh, Yuk-Ching
Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title_full Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title_fullStr Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title_full_unstemmed Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title_short Mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
title_sort mechanism and resistance for antimycobacterial activity of a fluoroquinophenoxazine compound
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6386362/
https://www.ncbi.nlm.nih.gov/pubmed/30794538
http://dx.doi.org/10.1371/journal.pone.0207733
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