β-Glucan hydrogel nanoparticles embedded with gold-silver nanoclusters for traceable drug delivery

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초록

(3-Glucan is a naturally derived polysaccharide with excellent biocompatibility, antioxidant activity, and immunomodulatory properties; however, its use as a multifunctional nanoscale drug delivery platform integrating intrinsic tracking capability remains comparatively underexplored relative to other polysaccharide systems. Herein, we report a multifunctional anticancer drug delivery system based on (3-glucan hydrogel nanoparticles embedded with doxorubicin and fluorescent gold-silver nanoclusters (DOX@AuAgNCs@(3gluNPs). The (3-glucan matrix enables efficient drug encapsulation, while the incorporated Au-Ag nanoclusters provide intrinsic fluorescence for label-free tracking. The resulting nanocarrier exhibited a high doxorubicin loading capacity (up to 13.8%) and pH-responsive release behavior, with accelerated release under acidic conditions relevant to the tumor microenvironment. In vitro cytotoxicity assays showed that DOX@AuAgNCs@(3gluNPs maintained anticancer efficacy comparable to free DOX. Confocal microscopy and quantitative fluorescence analysis further confirmed enhanced cellular uptake and effective intracellular tracking. Collectively, these results suggest that AuAgNCs@(3-gluNPs represent a traceable and efficient drug delivery platform integrating high drug loading, pH-responsive release, and intrinsic imaging capability, indicating the potential of (3-glucan as a functional biological macromolecule for advanced anticancer drug delivery applications.

키워드

(3-Glucan hydrogel nanoparticlesPolysaccharide-based drug deliveryGold-silver nanoclusterspH-responsive drug releaseIntrinsic fluorescence imagingDOXORUBICIN
제목
β-Glucan hydrogel nanoparticles embedded with gold-silver nanoclusters for traceable drug delivery
저자
Kwak, Kyong MinVu, Trung HieuLe, Xuan AiVu, Phu ChiJung, JonghyeokKim, Jae YoungKim, Moon Il
DOI
10.1016/j.ijbiomac.2026.152187
발행일
2026-05
유형
Article
저널명
International Journal of Biological Macromolecules
362