药物输送
聚吡咯
壳聚糖
材料科学
明胶
药品
控制释放
纳米技术
聚合
高分子化学
核化学
生物医学工程
化学
聚合物
药理学
复合材料
有机化学
医学
作者
Rui Yang,Liqin Tang,Rui Wang,Yongliang Wang,Hui Han,Jifu Mao
标识
DOI:10.1002/marc.202500238
摘要
Abstract Current antibacterial sutures for preventing surgical site infections (SSIs) face challenges including suboptimal drug utilization efficiency and uncontrolled burst release. To address these limitations, an antibacterial conductive suture with an electrically controlled drug release system is developed in this study. Polypyrrole (PPy) doped with tannic acid (TA) is in situ polymerized on the surface of silk sutures precoated with chitosan/gelatin (CS/GE), designated as PCG‐SS. The PCG‐SS exhibits excellent conductivity, enabling voltage‐dependent regulation of TA release. At −0.6 V applied potential, PPy underwent electrochemical reduction with decreased positive charge density, enabling maximal TA release; conversely, at +0.4 V, PPy attained an oxidized state with enhanced positive charges, strengthening electrostatic adsorption of anionic TA and achieving 80% suppression of drug elution. Under −0.6 V stimulation, the antibacterial rates of PCG‐SS against S. aureus and E. coli exceeded 90%. This work successfully validated that a PPy‐based drug‐controlled release system can effectively formulate drug release programs, providing new insights into the study of electronically controlled drug delivery systems.
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