Liposomal Antibiotic Booster Potentiates Carbapenems for Combating NDMs‐Producing Escherichiacoli

Author:

Wu Sixuan1234,Wei Yongbin123,Wang Yang56,Zhang Zhenzhong1237,Liu Dejun5,Qin Shangshang1237,Shi Jinjin1237ORCID,Shen Jianzhong56

Affiliation:

1. School of Pharmaceutical Sciences Zhengzhou University Zhengzhou 450001 China

2. Henan Key Laboratory of Targeting Therapy and Diagnosis for Critical Diseases Zhengzhou University Zhengzhou 450001 China

3. Key Laboratory of Advanced Drug Preparation Technologies Ministry of Education Zhengzhou University Zhengzhou 450001 China

4. School of Life Science Zhengzhou University Zhengzhou 450001 China

5. Engineering Research Center for Animal Innovative Drugs and Safety Evaluation, Ministry of Education, College of Veterinary Medicine China Agricultural University Beijing 100094 China

6. National Key Laboratory of Veterinary Public Health and Safety, College of Veterinary Medicine China Agricultural University Beijing 100094 China

7. State Key Laboratory of Esophageal Cancer Prevention & Treatment Zhengzhou 450001 China

Abstract

AbstractInfections caused by Enterobacterales producing New Delhi Metallo‐β‐lactamases (NDMs), Zn(II)‐dependent enzymes hydrolyzing carbapenems, are difficult to treat. Depriving Zn(II) to inactivate NDMs is an effective solution to reverse carbapenems resistance in NDMs‐producing bacteria. However, specific Zn(II) deprivation and better bacterial outer membrane penetrability in vivo are challenges. Herein, authors present a pathogen‐primed liposomal antibiotic booster (M‐MFL@MB), facilitating drugs transportation into bacteria and removing Zn(II) from NDMs. M‐MFL@MB introduces bismuth nanoclusters (BiNCs) as a storage tank of Bi(III) for achieving ROS‐initiated Zn(II) removal. Inspired by bacteria‐specific maltodextrin transport pathway, meropenem‐loaded BiNCs are camouflaged by maltodextrin‐cloaked membrane fusion liposome to cross the bacterial envelope barrier via selectively targeting bacteria and directly outer membrane fusion. This fusion disturbs bacterial membrane homeostasis, then triggers intracellular ROS amplification, which activates Bi(III)‐mediated Zn(II) replacement and meropenem release, realizing more precise and efficient NDMs producer treatment. Benefiting from specific bacteria‐targeting, adequate drugs intracellular accumulation and self‐activation Zn(II) replacement, M‐MFL@MB rescues all mice infected by NDM producer without systemic side effects. Additionally, M‐MFL@MB decreases the bacterial outer membrane vesicles secretion, slowing down NDMs producer's transmission by over 35 times. Taken together, liposomal antibiotic booster as an efficient and safe tool provides new strategy for tackling NDMs producer‐induced infections.

Funder

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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