Complexation‐Induced Resolution Enhancement Pleiotropic Small Diameter Vascular Constructs with Superior Antibacterial and Angiogenesis Properties

Author:

Xu Huilun1,Liu Zhengjiang1,Wei Yan12,Hu Yinchun12,Zhao Liqin12,Wang Longfei12,Liang Ziwei12,Lian Xiaojie12,Chen Weiyi12,Wang Jiucun34,Yu Zhaoyan5,Ma Xudong6,Huang Di12ORCID

Affiliation:

1. Department of Biomedical Engineering Research Center for Nano‐biomaterials & Regenerative Medicine College of Biomedical Engineering Taiyuan University of Technology Taiyuan 030024 P. R. China

2. Research Center for Biomaterials Shanxi‐Zheda Institute of Advanced Materials and Chemical Engineering Taiyuan 030032 P. R. China

3. Human Phenome Institute Fudan University Shanghai 200433 P. R. China

4. Greater Bay Area Institute of Precision Medicine (Guangzhou) School of Life Science Fudan University Shanghai 200433 P. R. China

5. Shandong Public Health Clinical Center Shandong University Jinan 250000 P. R. China

6. Cytori Therapeutics LLC Shanghai 201802 P. R. China

Abstract

Abstract3D printing has been widely applied for preparing artificial blood vessels, which will bring innovation to cardiovascular disorder intervention. However, the printing resolution and anti‐infection properties of small‐diameter vessels (Φ < 6 mm) have been challenging in 3D printing. The primary objective of this research is to design a novel coaxial 3D‐printing postprocessing method for preparing small‐size blood vessels with improved antibacterial and angiogenesis properties. The coaxial printing resolution can be more conveniently improved. Negatively charged polyvinyl alcohol (PVA) and alginate (Alg) interpenetrating networks artificial vessels are immersed in positively charged chitosan (CTS) solution. Rapid dimensional shrinkage takes place on its outer surface through electrostatic interactions. The maximum shrinkage size of wall thickness can reach 61.2%. The vessels demonstrate strong antibacterial properties against Escherichia coli (98.8 ± 0.5%) and Staphylococcus aureus (97.6 ± 1.4%). In rat dorsal skin grafting experiments, Cu2+ can promote angiogenesis by regulating hypoxia‐inducible factor‐1 pathway. No artificial blood vessel blockage occurs after 5 days of blood circulation in vitro.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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