Department of Pharmacology and Toxicology, Faculty of Veterinary Medicine, Kırıkkale University, 71450 Yahşihan, Kırıkkale, Turkey.
Department of Chemistry, Faculty of Engineering and Natural Sciences, Kırıkkale University, Yahşihan, 71450 Kırıkkale, Turkey; Alaca Avni Çelik Vocational School, Hitit University, Çorum, Turkey.
Int J Pharm. 2024 Jun 25;659:124287. doi: 10.1016/j.ijpharm.2024.124287. Epub 2024 May 28.
Multifunctional nanoplatforms developed from natural polymers and graphene oxide (GO) with enhanced biological/physicochemical features have recently attracted attention in the biomedical field. Herein, a new multifunctional near-infrared (NIR) light-, pH- and magnetic field-sensitive hybrid nanoplatform (mGO@AL-g-PHPM@ICG/EP) is developed by combining iron oxide decorated graphene oxide nanosheets (mGO) and poly(2-hydroxypropylmethacrylamide) grafted alginate (AL-g-PHPM) copolymer loaded with indocyanine green (ICG) and etoposide (EP) for chemo/phototherapy. The functional groups, specific crystal structure, size, morphology, and thermal stability of the nanoplatform were fully characterized by XRD, UV, FTIR, AFM/TEM/FE-SEM, VSM, DSC/TG, and BET analyses. In this platform, the mGO and ICG, as phototherapeutic agents, demonstrate excellent thermal effects and singlet oxygen production under NIR-light (808 nm) irradiation. The XRD and DSC analysis confirmed the amorphous state of the ICG/EP in the nanoparticles. In vitro photothermal tests proved that the mGO@AL-g-PHPM@ICG/EP nanoparticles had outstanding light stability and photothermal conversion ability. The in vitro release profiles presented NIR light-, pH- and magnetic field-controlled EP/ICG release behaviors. In vitro experiments demonstrated the excellent antitumor activity of the mGO@AL-g-PHPM@ICG/EP against H1299 tumor cells under NIR laser. Benefiting from its low-cost, facile preparation, and good dual-modal therapy, the mGO@AL-g-PHPM@ICG/EP nanoplatform holds great promise in multi-stimuli-sensitive drug delivery and chemo/phototherapy.
由天然聚合物和氧化石墨烯(GO)开发的多功能纳米平台,具有增强的生物/物理化学特性,最近在生物医学领域引起了关注。本文通过结合氧化铁修饰的氧化石墨烯纳米片(mGO)和负载吲哚菁绿(ICG)和依托泊苷(EP)的聚(2-羟丙基甲基丙烯酰胺)接枝海藻酸钠(AL-g-PHPM)共聚物,开发了一种新的多功能近红外(NIR)光、pH 和磁场敏感的杂化纳米平台(mGO@AL-g-PHPM@ICG/EP),用于化学/光疗。通过 XRD、UV、FTIR、AFM/TEM/FE-SEM、VSM、DSC/TG 和 BET 分析,充分表征了纳米平台的官能团、特定晶体结构、尺寸、形貌和热稳定性。在该平台中,mGO 和 ICG 作为光疗剂,在近红外光(808nm)照射下表现出优异的热效应和单线态氧生成。XRD 和 DSC 分析证实了纳米粒子中 ICG/EP 的无定形状态。体外光热试验证明,mGO@AL-g-PHPM@ICG/EP 纳米粒子具有出色的光稳定性和光热转换能力。体外释放曲线呈现出近红外光、pH 和磁场控制的 EP/ICG 释放行为。体外实验表明,mGO@AL-g-PHPM@ICG/EP 在近红外激光下对 H1299 肿瘤细胞具有优异的抗肿瘤活性。受益于其低成本、易于制备和良好的双模式治疗,mGO@AL-g-PHPM@ICG/EP 纳米平台在多刺激敏感药物输送和化学/光疗方面具有广阔的应用前景。