One-pot deposition of a multi-functional biomimetic coating for vascular stents

被引:15
作者
Chen, Chong [1 ]
Li, Li [3 ]
Qin, Yumei [2 ]
Yu, Tao [2 ]
Luo, Rifang [2 ]
Chen, Yu [1 ]
Jiang, Wentao [1 ]
Xu, Kai [4 ]
Han, Yaling [4 ]
Wang, Yunbing [2 ]
机构
[1] Sichuan Univ, Coll Architecture & Environm, Dept Appl Mech, Lab Biomech Engn, 29 Wangjiang Rd, Chengdu 610064, Peoples R China
[2] Sichuan Univ, Natl Engn Res Ctr Biomat, 29 Wangjiang Rd, Chengdu 610064, Peoples R China
[3] Sichuan Univ, Inst Clin Pathol, West China Hosp, Chengdu 610041, Peoples R China
[4] Gen Hosp Northern Theater Command, Dept Cardiol, Shenyang, Peoples R China
基金
中国国家自然科学基金;
关键词
Vascular stent; Biomimetic; Nitric oxide (NO); Hyaluronic acid; Antithrombotic; Antirestenosis; NITRIC-OXIDE; CLINICAL-OUTCOMES; SCAFFOLDS; IMPLANTATION; DYSFUNCTION; GENERATION; DELIVERY; HEPARIN;
D O I
10.1016/j.cej.2023.142605
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Implantation of vascular stents, with particular reference to drug-eluting stents (DESs), is considered the main tool in treating coronary artery diseases (CADs) and has saved millions of lives. However, the complications, in-stent thrombosis (IST) and in-stent restenosis (ISR), of DESs are a major risk for stenting failure because of thrombus and hyperplasia. Vascular endothelial cells (ECs) are capable of secreting extracellular matrix (ECM) and vasoactive substances to maintain and regulate the homeostasis of the vascular environment. Hence, conferring endothelial-like functions to vascular stents is an effective solution to improve their biocompatibility. In this work, we propose a simple preparation method for a multi-functional coating that can mimic ECs function with continuous generation of nitric oxide (NO), located in a hyaluronic acid platform. The coating was fabri-cated by a one-pot deposition of dopamine (DA), thiol-hyaluronic acid (HA-SH), and copper ions (Cu). Thiol-modified HA was efficiently incorporated by DA, which mimics the adhesion mechanism of mussels, via the "thiol-Michael addition" click reaction, along with the complexing Cu which can catalyze the endogenous S-nitrosothiols (RSNO) to continuous liberation nitric oxide (NO). Both in vitro and in vivo experiments showed that the biomimetic microenvironment which hyaluronic acid coating combined with NO-generation capability could remarkably improve the anticoagulant properties of the vascular stents and further accelerate the in-situ endothelialization process while inhibiting the intimal hyperplasia and regulating inflammation. In conclusion, this study shows a simple one-pot method for the construction of multi-functional coatings that mimic an endothelial-like environment, which might endow vascular stents with enhanced anti-coagulation and endo-thelialization capability to prevent IST and ISR.
引用
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页数:14
相关论文
共 64 条
[1]   Platelet Membrane-Coated Nanocarriers Targeting Plaques to Deliver Anti-CD47 Antibody for Atherosclerotic Therapy [J].
Chen, Liang ;
Zhou, Zhongyi ;
Hu, Cheng ;
Maitz, Manfred F. ;
Yang, Li ;
Luo, Rifang ;
Wang, Yunbing .
RESEARCH, 2022, 2022
[2]   Carrier-Enhanced Photodynamic Cancer Therapy of Self-Assembled Green Tea Polyphenol-Based Nanoformulations [J].
Chen, Xiangyu ;
Yi, Zeng ;
Chen, Guangcan ;
Ma, Xiaomin ;
Su, Wen ;
Deng, Zhiwen ;
Ma, Lei ;
Tong, Qiulan ;
Ran, Yaqin ;
Li, Xudong .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2020, 8 (43) :16372-16384
[3]   In-Stent Restenosis in the Drug-Eluting Stent Era [J].
Dangas, George D. ;
Claessen, Bimmer E. ;
Caixeta, Adriano ;
Sanidas, Elias A. ;
Mintz, Gary S. ;
Mehran, Roxana .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2010, 56 (23) :1897-1907
[4]   Glycocalyx-Like Hydrogel Coatings for Small Diameter Vascular Grafts [J].
Dimitrievska, Sashka ;
Wang, Juan ;
Lin, Tylee ;
Weyers, Amanda ;
Bai, Hualong ;
Qin, Lingfeng ;
Li, Guangxin ;
Cai, Chao ;
Kypson, Alan ;
Kristofik, Nina ;
Gard, Ashley ;
Sundaram, Sumati ;
Yamamoto, Kota ;
Wu, Wei ;
Zhao, Liping ;
Kural, Mehmet H. ;
Yuan, Yifan ;
Madri, Joseph ;
Kyriakides, Themis R. ;
Linhardt, Robert J. ;
Niklason, Laura E. .
ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (23)
[5]   Nitric oxide-releasing polyurethane/S-nitrosated keratin mats for accelerating wound healing [J].
Dou, Jie ;
Yang, Rong ;
Jin, Xingxing ;
Li, Pengfei ;
Han, Xiao ;
Wang, Lijuan ;
Chi, Bo ;
Shen, Jian ;
Yuan, Jiang .
REGENERATIVE BIOMATERIALS, 2022, 9
[6]   Metal-phenolic networks as a versatile platform to engineer nanomaterials and biointerfaces [J].
Ejima, Hirotaka ;
Richardson, Joseph J. ;
Caruso, Frank .
NANO TODAY, 2017, 12 :136-148
[7]   Immobilization of nano Cu-MOFs with polydopamine coating for adaptable gasotransmitter generation and copper ion delivery on cardiovascular stents [J].
Fan, Yonghong ;
Zhang, Yu ;
Zhao, Qian ;
Xie, Yinhong ;
Luo, Rifang ;
Yang, Ping ;
Weng, Yajun .
BIOMATERIALS, 2019, 204 :36-45
[8]   Nitric oxide signalling in cardiovascular health and disease [J].
Farah, Charlotte ;
Michel, Lauriane Y. M. ;
Balligand, Jean-Luc .
NATURE REVIEWS CARDIOLOGY, 2018, 15 (05) :292-316
[9]   The grafts modified by heparinization and catalytic nitric oxide generation used for vascular implantation in rats [J].
Gao, Jingchen ;
Jiang, Li ;
Liang, Qinge ;
Shi, Jie ;
Hou, Ding ;
Tang, Di ;
Chen, Siyuan ;
Kong, Deling ;
Wang, Shufang .
REGENERATIVE BIOMATERIALS, 2018, 5 (02) :105-114
[10]   Coronary Stents Current Status [J].
Garg, Scot ;
Serruys, Patrick W. .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2010, 56 (10) :S1-S42