盐酸四环素
控制释放
化学
色谱法
核化学
盐酸盐
化学工程
自愈水凝胶
四环素
解放
有孔小珠
壳聚糖
磁性纳米粒子
海藻酸钠
作者
Kun Fang,Pei Li,Hanbing Wang,Siew Hua Gan,Xu Huang,Y F Li
标识
DOI:10.1016/j.colsurfa.2025.138431
摘要
The exploration of novel drug delivery systems that respond to environmental changes has been motivating researchers to design smart biomaterials. Herein, we synthesized novel CMC-SA-Fe 3 O 4 hydrogel beads with dual responsiveness (pH- and magnetic), which were composed of low-cost and biocompatible carboxymethyl cellulose (CMC), sodium alginate (SA), and Fe 3 O 4 nanoparticles (NPs), and could serve as a delivery platform for model drug (tetracycline hydrochloride, TCH). In vitro drug release profiles confirmed these beads exhibited exceptional stability at pH 1.8, with cumulative drug release reaching 50.5 % (pH 6.8) and 60.7 % (pH 7.8) in alkaline media following the Ritger-Peppas model, and notably, external magnetic field (EMF) significantly accelerated TCH release. Additionally, bacteriostatic assays demonstrated that the synthesized beads had sufficient antibacterial activity against both Gram-negative ( Escherichia coli, E. coli ) and Gram-positive ( Staphylococcus aureus, S. aureus ) bacteria. In vitro, cytotoxicity tests showed that the gel beads had no deleterious effects on normal liver cells (HL-7702) but showed significant cytotoxicity against hepatocellular carcinoma cells (HePG2). This work explores a rapid, simple, and economical method for preparing hydrogel beads without the use of any hazardous chemicals as reducing agents or stabilizers. In addition, this novel pH/magnetically responsive, biocompatible, antibacterial, and antitumor platform will play an important role in the biomedical field. • Novel pH-responsive magnetic carboxymethyl cellulose/sodium alginate hydrogel beads were prepared. • The tetracycline release kinetic obeyed the Ritger-Peppas model. • The beads showed sufficient antibacterial activity against both E. coli and S. aureus bacteria. • The beads had no adverse effects on normal liver cells (HL-7702), but exhibited significant cytotoxicity against liver cancer cells (HePG2).
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