Engineering Immunomodulatory Stents Using a Biomimetic Nanozyme System for Vascular Healing

Delayed endothelialization and inflammatory response are two major obstacles that hinder vascular healing by drug-eluting stents (DES). Here, we report a biomimetic nanozyme strategy to address this issue. We first design and anchor a robust glutathione peroxidase (GPx)-biomimetic nanozyme with diselenide-polyphenol networks on a stent. Then, a thrombin inhibitor, bivalirudin, is efficiently loaded onto the nanozyme utilizing its reversible interactions with polyphenol. The nanozymes exhibit potent GPx activity to controllably generate nitric oxide (NO) and on-demand elution of bivalirudin. The synergistic effects of NO and bivalirudin effectively inhibit thrombin activity, prevent platelet activation, and consequently suppress thrombosis as well as the inflammatory response associated with it. In vitro pathological model cell studies demonstrate that the nanozyme-engineered stents specifically inhibit smooth muscle cell (SMC) proliferation, regulate macrophage polarization, and promote the repair and proliferation of endothelial cells. Thus, it enables rapid endothelialization and vascular healing, preventing restenosis in rabbit and swine models.

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Publication Details

Journal
Advanced Materials
Published
2026-10-05
DOI
https://doi.org/10.1002/adma.75212
Primary Topic
Advanced Nanomaterials in Catalysis
Type
article
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article

Engineering Immunomodulatory Stents Using a Biomimetic Nanozyme System for Vascular Healing

Wentai Zhang, Zhilu Yang, Xiaohui Mou, Yufeng Zheng et al.
Advanced Materials
Advanced Nanomaterials in Catalysis
article

Engineering Immunomodulatory Stents Using a Biomimetic Nanozyme System for Vascular Healing

Wentai Zhang, Zhilu Yang, Xiaohui Mou, Yufeng Zheng, Yanyun Liu, Wenxuan Wang, Yuting Huang, Rui Wang, Li Shen, Zeyu Du, Nan Huang
article en

Abstract

Delayed endothelialization and inflammatory response are two major obstacles that hinder vascular healing by drug-eluting stents (DES). Here, we report a biomimetic nanozyme strategy to address this issue. We first design and anchor a robust glutathione peroxidase (GPx)-biomimetic nanozyme with diselenide-polyphenol networks on a stent. Then, a thrombin inhibitor, bivalirudin, is efficiently loaded onto the nanozyme utilizing its reversible interactions with polyphenol. The nanozymes exhibit potent GPx activity to controllably generate nitric oxide (NO) and on-demand elution of bivalirudin. The synergistic effects of NO and bivalirudin effectively inhibit thrombin activity, prevent platelet activation, and consequently suppress thrombosis as well as the inflammatory response associated with it. In vitro pathological model cell studies demonstrate that the nanozyme-engineered stents specifically inhibit smooth muscle cell (SMC) proliferation, regulate macrophage polarization, and promote the repair and proliferation of endothelial cells. Thus, it enables rapid endothelialization and vascular healing, preventing restenosis in rabbit and swine models.

Advanced Materials
Bengbu Medical College (CN), Peking University (CN), Dongguan People’s Hospital (CN), Southwest Jiaotong University (CN), Southern Medical University (CN)
Openalex Percentile: Top 26%
Advanced Nanomaterials in Catalysis
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Engineering Immunomodulatory Stents Using a Biomimetic Nanozyme System for Vascular Healing — Wentai Zhang, Zhilu Yang, et al. · Advanced Materials (2026) | TGRS Research Map | TGRS