Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/110692
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Title: Chemical biology investigation of a triple-action, smart-decomposition antimicrobial booster based-combination therapy against “ESKAPE” pathogens
Authors: Wang, M
Pu, H
Xu, Y
Wu, C
Gu, Y
Cai, Q
Yin, G
Yin, P
Zhang, C
Wong, WL 
Wan, M
Bai, Y
Feng, X
Issue Date: Sep-2024
Source: Science China : chemistry, Sept 2024, v. 67, no. 9, p. 3071-3082
Abstract: The global antibiotic resistance crisis necessitates urgent solutions. One innovative approach involves potentiating antibiotics and non-antibiotic drugs with adjuvants or boosters. A major drawback of these membrane-active boosters is their limited biocompatibility, as they struggle to differentiate between prokaryotic and eukaryotic membranes. This study reports the chemical biology investigation of a dual-action oligoamidine (OA1) booster with a glutathione-triggered decomposition mechanism. OA1, when combined with other antimicrobial molecules, exhibits a triple-targeting mechanism including cell membrane disruption, DNA targeting, and intracellular enzyme inhibition. This multi-targeting mechanism not only enhances the in vitro and in vivo eradication of antibiotic-resistant “ESKAPE” pathogens, but also suppresses the development of bacterial resistance. Furthermore, OA1 maintains its activity in bacterial cells by creating an oxidative environment, while it quickly decomposes in mammalian cells due to high glutathione levels. These mechanistic insights and design principles may provide a feasible approach to develop novel antimicrobial agents and effective anti-resistance combination therapies.
Publisher: Science in China Press
Journal: Science China : chemistry 
ISSN: 1674-7291
EISSN: 1869-1870
DOI: 10.1007/s11426-024-2228-4
Rights: © Science China Press 2024
This is the accepted version of the article: Wang, M., Pu, H., Xu, Y. et al. Chemical biology investigation of a triple-action, smart-decomposition antimicrobial booster based-combination therapy against “ESKAPE” pathogens. Sci. China Chem. 67, 3071–3082 (2024). https://doi.org/10.1007/s11426-024-2228-4. The original publication is available at www.scichina.com and www.springerlink.com.
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