Nano‐enabled Quenching of Bacterial Communications for the Prevention of Biofilm Formation

Author:

Gao Meng1ORCID,Xu Bolong2ORCID,Huang Yang3,Cao Jiayu4,Yang Lili1,Liu Xi1,Djumaev Alisher5,Wu Di1,Shoxiddinova Moxichexra5,Cai Xiaoming4,Tojiyev Behruz5,Zheng Huizhen1ORCID,Li Xuehua3ORCID,Normurodova Kunduz5ORCID,Liu Huiyu2ORCID,Li Ruibin1ORCID

Affiliation:

1. State Key Laboratory of Radiation Medicine and Protection School for Radiological and Interdisciplinary Sciences (RAD-X) Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions Suzhou Medical College Soochow University 215123 Suzhou Jiangsu China

2. Beijing Advanced Innovation Center for Soft Matter Science and Engineering State Key Laboratory of Organic–Inorganic Composites Bionanomaterials & Translational Engineering Laboratory Beijing Key Laboratory of Bioprocess Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology 100029 Beijing China

3. Key Laboratory of Industrial Ecology and Environmental Engineering School of Environmental Science and Technology Dalian University of Technology 116024 Dalian Liaoning China

4. School of Public Health Jiangsu Key Laboratory of Preventive and Translational Medicine for Geriatric Diseases Soochow University 215123 Suzhou Jiangsu China

5. Department of Microbiology and Biotechnology Faculty of Biology National University of Uzbekistan named after Mirzo Ulugbek 100174 Tashkent Uzbekistan

Abstract

AbstractBiofilm formation is a major threat to industry, the environment and human health. While killing of embedded microbes in biofilms may inevitably lead to the evolution of antimicrobial resistance (AMR), catalytic quenching of bacterial communications by lactonase is a promising antifouling approach. Given the shortcomings of protein enzymes, it is attractive to engineer synthetic materials to mimic the activity of lactonase. Herein, an efficient lactonase‐like Zn−Nx−C nanomaterial was synthesized by tuning the coordination environment around zinc atoms to mimic the active domain of lactonase for catalytical interception of bacterial communications in biofilm formation. The Zn−Nx−C material could selectively catalyze 77.5 % hydrolysis of N‐acylated‐L‐homoserine lactone (AHL), a critical bacterial quorum sensing (QS) signal in biofilm construction. Consequently, AHL degradation downregulated the expression of QS‐related genes in antibiotic resistant bacteria and significantly prevented biofilm formation. As a proof of concept, Zn−Nx−C‐coated iron plates prevented 80.3 % biofouling after a month exposure in river. Overall, our study provides a nano‐enabled contactless antifouling insight to avoid AMR evolution by engineering nanomaterials for mimicking the key bacterial enzymes (e.g., lactonase) functioning in biofilm construction.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Publisher

Wiley

Subject

General Medicine

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