| Literature DB >> 25770993 |
Jingwen Li1, Zhonglin Lyv1, Yanli Li2, Huan Liu1, Jinkui Wang1, Wenjun Zhan1, Hong Chen3, Huabing Chen4, Xinming Li5.
Abstract
Due to their high NIR-optical absorption and high specific surface area, graphene oxide and graphene oxide-based nanocomposites have great potential in both drug delivery and photothermal therapy. In the work reported herein we successfully integrate a Pt(IV) complex (c,c,t-[Pt(NH3)2Cl2(OH)2]), PEGylated nano-graphene oxide (PEG-NGO), and a cell apoptosis sensor into a single platform to generate a multifunctional nanocomposite (PEG-NGO-Pt) which shows potential for targeted drug delivery and combined photothermal-chemotherapy under near infrared laser irradiation (NIR), and real-time monitoring of its therapeutic efficacy. Non-invasive imaging using a fluorescent probe immobilized on the GO shows an enhanced therapeutic effect of PEG-NGO-Pt in cancer treatment via apoptosis and cell death. Due to the enhanced cytotoxicity of cisplatin and the highly specific tumor targeting of PEG-NGO-Pt at elevated temperatures, this nanocomposite displays a synergistic effect in improving the therapeutic efficacy of the Pt drug with complete destruction of tumors, no tumor recurrence and minimal systemic toxicity in comparison with chemotherapy or photothermal treatment alone, highlighting the advantageous effects of integrating Pt(IV) with GO for anticancer treatment.Entities:
Keywords: Graphene oxide; Photothermal; Pt(IV); Synergistic; Theranostic
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Year: 2015 PMID: 25770993 DOI: 10.1016/j.biomaterials.2015.01.074
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479