透明质酸
化学
重编程
活性氧
药理学
药物输送
生物相容性材料
药品
抗氧化剂
细胞生物学
线粒体
巨噬细胞
炎症
心肌梗塞
氧化磷酸化
氧化应激
癌症研究
血管生成
再生(生物学)
自愈水凝胶
心脏纤维化
下调和上调
生物化学
治疗性血管生成
脂质体
共价键
作者
Minying Li,Qinghe Wu,Weipeng Sun,Wenhu Wu,Biyi Zhao,Yifei Wang,Wei Wang,Chun Fan,Dong Deng,Fanhang Meng
标识
DOI:10.1016/j.bioactmat.2026.01.015
摘要
Myocardial infarction (MI) leads to irreversible cardiomyocyte loss accompanied by oxidative stress, inflammation, and fibrotic remodeling, ultimately progressing to heart failure. Using network pharmacology analysis, salvianolic acid B (DB), a major bioactive component of Salvia miltiorrhiza, was identified as a promising therapeutic candidate for MI. Oral administration of DB showed therapeutic efficacy in functional, molecular, and histological assessments, but its clinical translation is limited by poor bioavailability. To overcome this limitation, we developed an injectable reactive oxygen species (ROS)-responsive hydrogel patch for localized MI repair. The hydrogel, composed of whey protein isolate methacrylate (WPI-MA) and o-nitrobenzyl alcohol modified hyaluronic acid (HA-NB), forms a biocompatible and adhesive network through dynamic covalent interactions. ROS-sensitive liposomes encapsulating DB were incorporated into the hydrogel, enabling localized and on-demand drug release in response to the oxidative microenvironment. In vitro studies confirmed that the hydrogel exhibited favorable mechanical strength, selective myocardial adhesiveness, and sustained antioxidant capacity. In a murine MI model, a single administration of the hydrogel patch markedly attenuated fibrosis, promoted angiogenesis, and restored cardiac function. This study establishes a rational design strategy that begins with network pharmacology-based drug discovery, proceeds through validation of therapeutic efficacy, and culminates in the construction of a responsive delivery system, providing a promising approach for localized and sustained post-infarction cardiac repair.
科研通智能强力驱动
Strongly Powered by AbleSci AI