Biomimetic Antithrombotic Tissue-Engineered Vascular Grafts for Converting Cholesterol and Free Radicals into Nitric Oxide.
Dongcheng YangYanzhao LiJu TanWenya LiZilu XuJianhua XuChunli HouJingting ZhouGang LiMingcan YangYong LiuQiaorui TangXiaohan ZhangWen ZengXuli FengChuhong ZhuPublished in: Advanced healthcare materials (2023)
Small-diameter tissue-engineered vascular grafts (sdTEVGs) are essential materials used in bypass or replacement surgery for cardiovascular diseases; however, their application efficacy is limited because of patency rates, especially under hyperlipidemia, which is also clinically observed in patients with cardiovascular diseases. In such cases, improving sdTEVG patency is challenging because cholesterol crystals easily cause thrombosis and impede endothelialization. Here, the development of a biomimetic antithrombotic sdTEVG incorporating cholesterol oxidase and arginine into biomineralized collagen-gold hydrogels on an sdTEVG surface is described. Biomimetic antithrombotic sdTEVGs represent a multifunctional substrate for the green utilization of hazardous substances and can convert cholesterol into hydrogen peroxide, which can react with arginine to generate nitric oxide (NO). NO is a vasodilator that can simulate the antithrombotic action of endothelial cells under hyperlipidemic conditions. In vivo studies have shown that sdTEVGs can rapidly produce large amounts of NO via a cholesterol catalytic cascade to inhibit platelet aggregation, thereby improving the blood flow velocity and patency rates 60 days after sdTEVG transplantation. A practical and reliable strategy for transforming "harmful" substances into "beneficial" factors at early transplantation stages is presented, that can also promote vascular transplantation in patients with hyperlipidemia. This article is protected by copyright. All rights reserved.
Keyphrases
- nitric oxide
- hydrogen peroxide
- low density lipoprotein
- blood flow
- atrial fibrillation
- cardiovascular disease
- nitric oxide synthase
- tissue engineering
- endothelial cells
- drug delivery
- minimally invasive
- adipose tissue
- cell therapy
- drinking water
- cardiovascular risk factors
- high fat diet
- wound healing
- bone marrow
- coronary artery bypass
- silver nanoparticles
- room temperature
- structural basis