橙皮苷
自愈水凝胶
褐藻糖胶
化学
纳米凝胶
控制释放
多糖
壳聚糖
肽
化学工程
生物物理学
材料科学
纳米技术
药物输送
高分子化学
生物化学
有机化学
医学
替代医学
病理
工程类
生物
作者
Min-Rui Tai,Hongwu Ji,Jianping Chen,Xiaofei Liu,Bingbing Song,Saiyi Zhong,Aaqil Rifai,David R. Nisbet,Colin J. Barrow,Richard J. Williams,Rui Li
标识
DOI:10.1016/j.ijbiomac.2023.126232
摘要
Self-assembled peptide and polysaccharide nanogels are excellent candidates for bioactive delivery vectors. However, there are still significant challenges in the application of nanogels as delivery tools for bioactive elements. This study aims to deliver, and control the release of a hydrophobic bioactive flavonoid hesperidin. Using the self-assembling peptide (SAP) Fmoc-FRGDF, extracellular matrix mimicking nanofibrils were fabricated, which were decorated and bolstered with immunomodulatory polysaccharide strands of fucoidan and infused with hesperidin. The mechanical properties, secondary structure, and microscopic morphologies of the composite hydrogels were characterized using rheometer, FTIR, XRD, and TEM, etc. The encapsulation efficiency (EE) and release behavior of hesperidin were determined. Coassembly of the SAP with fucoidan improved the mechanical properties (from 9.54 Pa of Fmoc-FRGDF hydrogel to 7735 Pa of coassembly hydrogel at 6 mg/mL fucoidan concentration), formed thicker nanofibril bundles at 4 and 6 mg/mL fucoidan concentration, improved the EE of hesperidin from 72.86 % of Fmoc-FRGDF hydrogel to over 90 % of coassembly hydrogels, and showed effectively controlled release of hesperidin in vitro. Intriguingly, the first order kinetic model predicted an enhanced hydrogel retention and release of hesperidin. This study revealed a new approach for bioengineered nanogels that could be used to stabilize and release hydrophobic payloads.
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