Functional Living Materials for Virus Disinfection Based on Engineered Bacillus subtilis Biofilm by Displaying Viral Affinity Peptides and Expressing Protease

Author:

Zhu Xiaojuan1,Chen Jianshu1,Luo Jian2,Liu Xue3,Xu Yan1,Chen Lin1,Dong Hao4,Zhang Lingfan5,Yang Lin6,Jiang Nin1,Huang Xumeng1,Mohsin Ali1,Yi Xiaoping1,Wang Yonghong1,Zhuang Yingping1,Zhang Xuehong7,Zhang Ke2,Zhang Lixin1,Zhong Chao8,Huang Jiaofang16ORCID

Affiliation:

1. State Key Laboratory of Bioreactor Engineering East China University of Science and Technology (ECUST) Shanghai 200237 P. R. China

2. Shanghai Institute of Biological Products Co. Ltd Shanghai 200051 P. R. China

3. Shanghai Institute of Immunity and Infection Chinese Academy of Sciences (CAS) Shanghai 200031 P. R. China

4. State Key Laboratory of Marine Food Processing and Safety Control College of Food Science and Engineering Ocean University of China Qingdao 266404 P. R. China

5. School of Chemistry and Molecular Engineering East China University of Science and Technology Shanghai 200237 P. R. China

6. College of Life Science Jiangxi Normal University (JXNU) Nanchang 330022 P. R. China

7. State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology Shanghai Jiao Tong University Shanghai 200240 P. R. China

8. Shenzhen Institute of Synthetic Biology Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 P. R. China

Abstract

AbstractGlobal pandemics caused by pathogenic viruses have highlighted the need to develop effective and sustainable materials to defend against these viruses. However, most commercial viral disinfection materials rely on precious metals, which are toxic. In this study, an engineered living material based on Bacillus subtilis biofilms is presented that can effectively remove Influenza A virus and SARS‐CoV‐2 from water. First, B. subtilis biofilm is used to display the H1N1 and H5N1 specific binding peptide C40 and SARS‐CoV‐2 specific binding peptide SBP1; thus, the biofilm materials has outstanding efficacy against H1N1, H5N1, and SARS‐CoV‐2 pseudovirus from water. In addition to capturing the virus, these biofilm materials can also inactivate the virus by secreting alkaline protease AprE, which effectively degrades the viral proteins at temperatures of 4, 16, 25, and 37 °C. Furthermore, to constrain bacterial growth and prevent the leakage of genetically modified organisms, a suicide genetic circuit using the quorum‐sensing system ComQXPA to control Lytc expression is constructed, leading to bacterial lysis. Overall, this study demonstrates a novel, effective, and sustainably engineered living material for preventing viral transmission. This material provides a safeguard for public health and promotes environmentally friendly governance.

Funder

National Key Research and Development Program of China

Natural Science Foundation of Shanghai Municipality

National Science Fund for Distinguished Young Scholars

Publisher

Wiley

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