Lithium‐Induced Optimization Mechanism for an Ultrathin‐Strut Biodegradable Zn‐Based Vascular Scaffold

Author:

Yang Hongtao12ORCID,Jin Dawei3,Rao Jiancun4,Shi Jiahui1,Li Guannan1,Wang Cheng5,Yan Kai6,Bai Jing7,Bao Guo8,Yin Meng3,Zheng Yufeng1ORCID

Affiliation:

1. Beijing Advanced Innovation Center for Materials Genome Engineering & School of Materials Science and Engineering Peking University Beijing 100871 P. R. China

2. School of Engineering Medicine Beihang University Beijing 100191 P. R. China

3. Department of Cardiothoracic Surgery Shanghai Children's Medical Center School of Medicine Shanghai Jiao Tong University 1678 Dong Fang Road Shanghai 200127 P. R. China

4. AIM Lab Maryland NanoCenter University of Maryland College Park MD 20742 USA

5. Institute of Surface Science Helmholtz‐Zentrum Hereon 21502 Geesthacht Germany

6. College of Mechanical Engineering Yangzhou University Yangzhou 225127 P. R. China

7. School of Materials Science and Engineering Southeast University Nanjing 211189 P. R. China

8. Department of Reproduction and Physiology National Research Institute for Family Planning Beijing 100081 P. R. China

Abstract

AbstractTo reduce incidences of in‐stent restenosis and thrombosis, the use of a thinner‐strut stent has been clinically proven to be effective. Therefore, the contemporary trend is toward the use of ultrathin‐strut (≤70 µm) designs for durable stents. However, stents made from biodegradable platforms have failed to achieve intergenerational breakthroughs due to their excessively thick struts. Here, microalloying is used to create an ultrathin‐strut (65 µm) zinc (Zn) scaffold with modified biodegradation behavior and improved biofunction, by adding lithium (Li). The scaffold backbone consists of an ultrafine‐grained Zn matrix (average grain diameter 2.28 µm) with uniformly distributed nanoscale Li‐containing phases. Grain refinement and precipitation strengthening enable it to achieve twice the radial strength with only 40% of the strut thickness of the pure Zn scaffold. Adding Li alters the thermodynamic formation pathways of products during scaffold biodegradation, creating an alkaline microenvironment. Li2CO3 may actively stabilize this microenvironment due to its higher solubility and better buffering capability than Zn products. The co‐release of ionic zinc and lithium enhances the beneficial differential effects on activities of endothelial cells and smooth muscle cells, resulting in good endothelialization and limited intimal hyperplasia in porcine coronary arteries. The findings here may break the predicament of the next‐generation biodegradable scaffolds.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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