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Updated: Jul 8, 2026

Alternating Magnetic Field-Responsive Hybrid Gelatin Microgels for Controlled Drug Release
Published on: February 13, 2016
Multi-responsive nanocarrier based on P(NIPAM-co-DMAEA) grafted magnetic cellulose for controlled and targeted drug
Soheila Ghasemi1, Hadis Soltanimehr1, Banafsheh Rastegari2
1Department of Chemistry, Faculty of Science, Shiraz University, Shiraz, Iran.
Abstract:
The increasing prevalence of cancer has highlighted the need for effective, non-invasive treatments and early diagnosis. Bio-based drug delivery systems (DDSs) have been developed to enable targeted delivery of substances like drugs, and reducing side effects. Temperature and pH-responsive materials like poly(N-isopropylacrylamide) (PNIPAM) and poly(2-(dimethylamino)ethyl acrylate) (PDMAEA) are effective carriers for delivering anti-cancer drugs due to their ability to undergo rapid phase transitions in response to changes in temperature and pH. This project involved synthesizing a multi-responsive nanocarrier based on P(NIPAM-co-DMAEA) using RAFT polymerization. The prepared copolymer was grafted onto verjuice-stabilized Fe3O4 MNPs coated with amino-modified cellulose extracted from Aloe vera leaves. The anticancer drug cisplatin was efficiently conjugated to Fe3O4/cellulose-NH2/P(NIPAM-co-DMAEA). The drug release behavior of this smart magnetic nano-system was studied at pH 7.4 and 5.5 and temperatures of 37 °C and 40 °C. Cisplatin release was greater in acidic conditions and increased significantly above the LCST (38 °C). A comparison of the cisplatin-loaded magnetic nanocarrier and free cisplatin revealed that the former resulted in a higher rate of cancer cell death at higher concentrations. Moreover, the observed cisplatin-induced apoptosis underscores the beneficial role of the nanocarrier in enhancing the efficacy of cancer drug delivery. Our results introduce this system as a strong candidate for controlled DDS.
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