Chen Lepeng, Chi Fengyao, Huang Xueyu, Wei Bangquan, Yang Li, Luo Rifang, Zheng Cheng, Wang Yunbing
National Engineering Research Center for Biomaterials and College of Biomedical Engineering, Sichuan University, China.
National Engineering Research Center for Biomaterials and College of Biomedical Engineering, Sichuan University, China.
Acta Biomater. 2025 Sep 15;204:257-276. doi: 10.1016/j.actbio.2025.08.022. Epub 2025 Aug 16.
The progress of transcatheter valve replacement has significantly reduced the risk of valve replacement, increasing the demand for bioprosthetic heart valves (BHVs). Currently, the defects of BHVs, including thrombosis, poor endothelialization, calcification, and immune responses that are associated with glutaraldehyde crosslinking and their xenogeneic collagenous matrix, have accelerated the degeneration of BHVs. Herein, we constructed an endothelial function biomimetic hydrogel surface engineered non-glutaraldehyde BHV based on bioinspired catechol-crosslinking system and metal-chelation. An endothelial glycocalyx-like layer was anchored on BHV through the bioinspired oxidative coupling of catecholic porcine pericardium and alginate to mimic the endothelial glycocalyx on the inner wall of blood vessels, by which we also simultaneously achieved the crosslinking of BHV and the enrichment of bioactive catechols on BHV. Furthermore, the copper ions were introduced through chelation with alginate and catechol to impart glutathione peroxidase (GPx)-like functionality to BHVs, which mimicked the nitroxide (NO) generation performance of endothelium. The engineered BHV not only resisted the thrombosis, alleviated oxidative stress and modulated the immune responses but also facilitated the endothelialization. Moreover, the calcification of the BHVs was also significantly reduced in rat subcutaneous model. Altogether, this work presents significant potential to prolong the service life of BHVs. STATEMENT OF SIGNIFICANCE: Bioprosthetic heart valves (BHVs) are prone to degeneration due to thrombosis, poor endothelialization, calcification, and immune responses which are closely associated with the defects of glutaraldehyde crosslinking and their xenogeneic collagenous matrix. Based on catechol cross-linking and metal-phenol chemistry, we engineered a non-glutaraldehyde BHV with an endothelial function biomimetic hydrogel surface to prevent thrombosis, reduce calcification, and enhance endothelialization and immunomodulation. The endothelial function biomimetic hydrogel surface resists blood fouling and thrombosis, forming a catechol-rich entity to alleviate oxidative stress and modulate immune responses. The incorporation of copper ions confers GPx-like functionality, mimicking endothelial nitric oxide generation and facilitating the endothelialization. This work holds potential to extend the lifespan of BHVs and presents a promising candidate for the next generation of multi-functional BHVs.
经导管瓣膜置换术的进展显著降低了瓣膜置换的风险,增加了对生物人工心脏瓣膜(BHVs)的需求。目前,BHVs存在包括血栓形成、内皮化不良、钙化以及与戊二醛交联及其异种胶原基质相关的免疫反应等缺陷,这些缺陷加速了BHVs的退变。在此,我们基于仿生儿茶酚交联系统和金属螯合构建了一种具有内皮功能仿生水凝胶表面的非戊二醛BHV。通过儿茶酚化猪心包和藻酸盐的仿生氧化偶联,在内皮细胞糖萼样层锚定在BHV上,以模拟血管内壁的内皮细胞糖萼,借此我们还同时实现了BHV的交联以及生物活性儿茶酚在BHV上的富集。此外,通过与藻酸盐和儿茶酚螯合引入铜离子,赋予BHV类似谷胱甘肽过氧化物酶(GPx)的功能,模拟内皮细胞的一氧化氮(NO)生成性能。这种工程化的BHV不仅能抵抗血栓形成、减轻氧化应激并调节免疫反应,还能促进内皮化。此外,在大鼠皮下模型中,BHV的钙化也显著减少。总之,这项工作在延长BHV使用寿命方面具有巨大潜力。意义声明:生物人工心脏瓣膜(BHVs)由于血栓形成、内皮化不良、钙化以及与戊二醛交联及其异种胶原基质缺陷密切相关的免疫反应而易于退变。基于儿茶酚交联和金属 - 酚化学,我们设计了一种具有内皮功能仿生水凝胶表面的非戊二醛BHV,以预防血栓形成、减少钙化,并增强内皮化和免疫调节。内皮功能仿生水凝胶表面可抵抗血液污染和血栓形成,形成富含儿茶酚的实体以减轻氧化应激并调节免疫反应。铜离子的掺入赋予类似GPx的功能,模拟内皮细胞一氧化氮生成并促进内皮化。这项工作有望延长BHV的使用寿命,并为下一代多功能BHV提供有前景的候选方案。