Artificial Neutrophils Against Vascular Graft Infection

Author:

Jiang Wentao1ORCID,Xu Huizi2,Gao Zheng1,Wu Ziyu13,Zhao Zichun1,Wang Jun4,Wu Yawen2,Ke Haifeng2,Mao Chun23ORCID,Wan Mimi23,Zhou Min134

Affiliation:

1. Department of Vascular Surgery Cardiovascular center Nanjing Drum Tower Hospital The Affiliated Hospital of Nanjing University Medical School Nanjing 210008 China

2. National and Local Joint Engineering Research Center of Biomedical Functional Materials School of Chemistry and Materials Science Nanjing Normal University Nanjing 210023 China

3. Institute for Life and Health Nanjing Drum Tower Hospital Nanjing Normal University Nanjing 210023 China

4. Department of Vascular Surgery Nanjing Drum Tower Hospital Clinical College of Nanjing University of Chinese Medicine Nanjing 210008 China

Abstract

AbstractEfficient neutrophil migration to infection sites plays a vital role in the body's defense against bacterial infections and natural immune responses. Neutrophils have a short lifespan and cannot be mass‐cultured in vitro. Therefore, developing more stable artificial neutrophils (AN) in a controllable manner has become a research focus. However, existing AN lack chemotaxis, which is the ability to migrate toward high‐signal‐concentration positions in a dynamic blood‐ flow environment. Supplying AN with chemotaxis is key to designing AN that are more similar to natural neutrophils in terms of morphology and function. In this study, micrometer‐sized, spherical, biocompatible AN are developed. These AN consist of zeolitic imidazolate framework‐8 nanoparticles encapsulating two enzymes, coacervate droplet frameworks, and outer phospholipid bilayers carrying enzymes. The AN exhibit responsiveness to elevated hydrogen peroxide levels at inflammation sites, actively chemotaxing toward these sites along concentration gradients. They also demonstrate effective combat against Staphylococcus aureus infections. The capabilities of the AN are further validated through in vitro experiments and in vivo evaluations using vascular graft infection models. This study replicates natural neutrophils in terms of chemical composition, functionality, and physiological impact. It introduces new ideas for advancing the development of advanced artificial cells.

Funder

National Natural Science Foundation of China

Priority Academic Program Development of Jiangsu Higher Education Institutions

Foundation of Jiangsu Collaborative Innovation Center of Biomedical Functional Materials

Publisher

Wiley

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