材料科学
涂层
支架
血栓形成
生物医学工程
细胞内
细胞生物学
细胞粘附
生物物理学
血管平滑肌
血管组织
血小板
粘附
止血
内皮干细胞
内生
主动脉
再狭窄
巨噬细胞
纳米技术
内皮
分流(医疗)
细胞
纤维蛋白
细胞外基质
下调和上调
体内
再生(生物学)
血小板活化
作者
Jiayi Zhang,Yang Li,Zhen Xiang,Daihua Fu,Y X Wang
标识
DOI:10.1002/adfm.202522266
摘要
Abstract Cardiovascular stents persistently struggle to reconcile rapid endothelialization with long‐term prevention of thrombosis and restenosis. This study develops a spatiotemporally orchestrated dual‐gas‐releasing hydrogel coating that synchronizes H 2 S and NO delivery with the dynamic phases of vascular healing. The coating is fabricated by covalently grafting an alginate coating onto poly(L‐lactic acid) stents via a benzophenone‐mediated two‐step surface photopolymerization. A thiol‑activated H 2 S donor is anchored within the coating, while alginate‑chelated Cu 2 ⁺ catalyzes NO generation from endogenous S‑nitrosothiols. An early H 2 S burst synergizes with NO to suppress thromboinflammation and prime a regenerative niche, while sustained NO release maintains vascular homeostasis and directs long‐term remodeling. The coating reduces platelet adhesion by over 90%, virtually eliminates thrombosis in an arteriovenous shunt model, triples endothelial coverage, and suppresses smooth muscle cell proliferation by ≈73%. It also reprograms macrophage polarization, increasing the M2/M1 ratio tenfold, and reduces intracellular ROS levels by >90%. In a rabbit abdominal aorta model, the coating promotes flow‐aligned endothelialization, achieving CD31⁺/eNOS⁺ coverage comparable to native tissue within 3 months, while decreasing neointimal thickness by 66% versus controls. This spatiotemporally tailored gasotransmitter delivery resolves the healing dichotomy of stents, providing a clinically translatable platform for next‐generation vascular implants.
科研通智能强力驱动
Strongly Powered by AbleSci AI