克林霉素
生物矿化
体外
控制释放
膜
生物利用度
化学
壳聚糖
药理学
抗菌剂
药品
抗生素
植入
延期放行
生物相容性
磷酸盐
生物医学工程
抗菌剂
复合数
体内
微生物学
生物相容性材料
基质(化学分析)
药物输送
生物材料
医学
活性成分
牙科
作者
Ștefan Ioan Voicu,Andreea Mădălina Pandele,Adrian Ionuț Nicoară,Iulian Antoniac,Mădălina Oprea,Cristian Bica
出处
期刊:Ceramics
[Multidisciplinary Digital Publishing Institute]
日期:2025-11-13
卷期号:8 (4): 138-138
被引量:2
标识
DOI:10.3390/ceramics8040138
摘要
Implant-associated infections remain a major clinical challenge, often leading to implant failure, revision surgery, and increased healthcare burden. Systemic antibiotic administration is limited by poor local bioavailability and systemic side effects, highlighting the need for localized drug-delivery systems that can simultaneously support tissue integration and prevent bacterial colonization. This study aimed to develop and characterize a novel generation of chitosan membranes loaded with hydroxyapatite–clindamycin phosphate (CS/HA-CLY) for localized infection prevention at implantation sites. The composite membranes’ physicochemical characteristics were analyzed using ATR FT-IR, XPS, SEM, XRD, and contact angle measurements. Furthermore, the in vitro biomineralization potential was assessed employing the Taguchi method, while the in vitro release of clindamycin phosphate was examined through UV-Vis spectrophotometry. The CS/HA-CLY membranes exhibited improved wettability, drug release behavior, and biomineralization ability compared to neat CS. These results suggest that the developed composite membranes could successfully combine antibacterial efficacy and biocompatibility, supporting their potential as multifunctional biomaterials for preventing implant-related infections while promoting tissue integration. These findings provide a promising basis for further biological assays and in vitro evaluation.
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