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1
Crystal structure and stability of gyrase-fluoroquinolone cleaved complexes from Mycobacterium tuberculosis.
Proc Natl Acad Sci U S A. 2016 Feb 16;113(7):1706-13. doi: 10.1073/pnas.1525047113. Epub 2016 Jan 20.
2
Fluoroquinolone interactions with Mycobacterium tuberculosis gyrase: Enhancing drug activity against wild-type and resistant gyrase.
Proc Natl Acad Sci U S A. 2016 Feb 16;113(7):E839-46. doi: 10.1073/pnas.1525055113. Epub 2016 Jan 20.
3
Fluoroquinolone-gyrase-DNA complexes: two modes of drug binding.
J Biol Chem. 2014 May 2;289(18):12300-12. doi: 10.1074/jbc.M113.529164. Epub 2014 Feb 4.
5
Mechanisms of fluoroquinolone resistance in Mycobacterium tuberculosis.
Yi Chuan. 2016 Oct 20;38(10):918-927. doi: 10.16288/j.yczz.16-136.
8
The C7-aminomethylpyrrolidine group rescues the activity of a thio-fluoroquinolone.
Biochimie. 2019 May;160:24-27. doi: 10.1016/j.biochi.2019.02.002. Epub 2019 Feb 11.
9
Fluoroquinolone-Gyrase-DNA Cleaved Complexes.
Methods Mol Biol. 2018;1703:269-281. doi: 10.1007/978-1-4939-7459-7_19.
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Mechanism of Action of Mycobacterium tuberculosis Gyrase Inhibitors: A Novel Class of Gyrase Poisons.
ACS Infect Dis. 2018 Aug 10;4(8):1211-1222. doi: 10.1021/acsinfecdis.8b00035. Epub 2018 May 17.

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Quinolone Resistance and Zoonotic Potential of from Domestic Animals in Brazil.
Antibiotics (Basel). 2025 Aug 20;14(8):843. doi: 10.3390/antibiotics14080843.
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Bacterial type II topoisomerases cleave DNA in a species-specific manner.
bioRxiv. 2025 Jul 28:2025.07.28.667256. doi: 10.1101/2025.07.28.667256.
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Investigation of WQ-3810, a Fluoroquinolone with a High Potential Against Fluoroquinolone-Resistant .
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Synthesis, Characterization, and Anti- Application of Redox-Active Ethyl Carbazate-Derivatized Phenanthroline and Its Silver Complexes.
ACS Omega. 2025 Jun 13;10(27):28993-29013. doi: 10.1021/acsomega.5c00871. eCollection 2025 Jul 15.
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Structural basis of topoisomerase targeting by delafloxacin.
Nat Commun. 2025 Jul 1;16(1):5829. doi: 10.1038/s41467-025-60688-3.
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Anti-Mycobacterial Activity of Bacterial Topoisomerase Inhibitors with Dioxygenated Linkers.
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Deep learning-based prediction of chemical accumulation in a pathogenic mycobacterium.
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本文引用的文献

1
Fluoroquinolone interactions with Mycobacterium tuberculosis gyrase: Enhancing drug activity against wild-type and resistant gyrase.
Proc Natl Acad Sci U S A. 2016 Feb 16;113(7):E839-46. doi: 10.1073/pnas.1525055113. Epub 2016 Jan 20.
2
New developments in the treatment of drug-resistant tuberculosis: clinical utility of bedaquiline and delamanid.
Infect Drug Resist. 2015 Oct 30;8:367-78. doi: 10.2147/IDR.S68351. eCollection 2015.
3
Anti-tuberculosis lead molecules from natural products targeting Mycobacterium tuberculosis ClpC1.
J Ind Microbiol Biotechnol. 2016 Mar;43(2-3):205-12. doi: 10.1007/s10295-015-1709-3. Epub 2015 Nov 19.
4
Shortening Tuberculosis Treatment With Fluoroquinolones: Lost in Translation?
Clin Infect Dis. 2016 Feb 15;62(4):484-90. doi: 10.1093/cid/civ911. Epub 2015 Nov 1.
7
Role of the water-metal ion bridge in mediating interactions between quinolones and Escherichia coli topoisomerase IV.
Biochemistry. 2014 Sep 2;53(34):5558-67. doi: 10.1021/bi500682e. Epub 2014 Aug 21.
8
Intracellular activity of tedizolid phosphate and ACH-702 versus Mycobacterium tuberculosis infected macrophages.
Ann Clin Microbiol Antimicrob. 2014 Apr 4;13:13. doi: 10.1186/1476-0711-13-13.
9
Current progress in Structure-Based Rational Drug Design marks a new mindset in drug discovery.
Comput Struct Biotechnol J. 2013 Apr 2;5:e201302011. doi: 10.5936/csbj.201302011. eCollection 2013.
10
Mechanism of quinolone action and resistance.
Biochemistry. 2014 Mar 18;53(10):1565-74. doi: 10.1021/bi5000564. Epub 2014 Mar 7.

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