Development of a Multifunctional, Moisture‐Responsive Bioadhesive Powder for Rapid Hemostasis, Drug Delivery, and Photothermal Therapy

生物粘附 生物相容性 生物医学工程 体内 药物输送 材料科学 光热治疗 胶粘剂 纳米技术 微球 机械强度 药品 粘附 输送系统 组织粘连 体外 癌症治疗 材料试验
作者
Changkyu Lee
出处
期刊:Advanced Healthcare Materials [Wiley]
卷期号:15 (16): e03233-e03233
标识
DOI:10.1002/adhm.202503233
摘要

Tissue adhesion is essential in numerous clinical procedures-including hemostasis, suturing, tumor resection, and repair of gastrointestinal perforations-and is increasingly critical for rapidly evolving minimally invasive surgeries. Bioadhesives join tissues quickly while reducing operative time, blood loss, and trauma; however, many current products show limited biocompatibility and inadequate adhesive strength or stability under wet, dynamic physiological conditions, restricting their clinical use. To overcome these shortcomings, this study evaluated a new lyophilized bioadhesive powder (Azide-Modified BSA/Gelatin/4-Arm PEG-DBCO Powder, AGP powder). Through dibenzocyclooctyne (DBCO)-azide click chemistry, AGP powder gels within seconds on moist tissue surfaces and provides robust adhesion. Supplied as a dry powder, it can be stored for long periods at room temperature and applied intraoperatively by simple spraying or sprinkling. In vitro and in vivo tests demonstrated rapid bleeding control, strong hemostatic efficacy, and efficient slow-release drug delivery to local tissues. AGP powder firmly anchors miniature electronic devices such as Radio-Frequency Identification (RFID) chips for in vivo monitoring, remains highly biocompatible, and biodegrades almost completely within 14 days, eliminating the need for removal. Collectively, the powder's strong adhesion, multifunctionality (drug delivery and device fixation), safety profile, and extended shelf-life indicate that AGP powder represents a highly promising bioadhesive solution for a broad range of biomedical applications.
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