Hyperthermia Efficacy of PEGylated-PLGA Coated Monodisperse Iron Oxide Nanoparticles

F. Senturk
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Abstract

Magnetic nano hyperthermia (MNH) is a promising technique for the treatment of a variety of malignancies. This non-invasive technique employs magnetic nanoparticles and alternating magnetic fields to generate local heat at the tumor location, which activates cell death pathways. However, the efficacy of MNH is dependent on the physicochemical properties of the magnetic nanoparticles, such as size, size distribution, magnetic properties, biocompatibility, and dispersibility in the medium. In this study, it is aimed to evaluate the heating capacity of poly (lactic-co-glycolic acid)-poly (ethylene glycol) di-block copolymer (PLGA-b-PEG) coated monodisperse iron oxide nanoparticles (IONs) as an effective mediator for MNH application. For this purpose, monodisperse IONs with a narrow size distribution and a mean particle size of 8.6 nm have been synthesized via the thermal decomposition method. The resulting IONs were then coated with the PEGylated-PLGA polymer and homogeneously dispersed in the polymeric matrix, which had a clearly defined spherical shape. Additionally, the specific absorption rate (SAR), reflecting the amount of heat dissipation from the NPs to the surrounding medium, was calculated for different concentrations (10, 5, 2.5, and 1.25 mg/mL) of PEGylated-PLGA-IONs. At 5 mg/mL PEGylated-PLGA-IONs (125 μgFe/mL) were found to have a maximum SAR value of 313 W/g. In conclusion, the homogenous dispersion of IONs in PEGylated-PLGA matrix may be one of the critical parameters to enhance the SAR value for MNH-based cancer therapy.
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聚乙二醇-聚乳酸包覆单分散氧化铁纳米颗粒的热疗效果
磁性纳米热疗(MNH)是治疗多种恶性肿瘤的一种很有前途的技术。这种非侵入性技术利用磁性纳米颗粒和交变磁场在肿瘤部位产生局部热量,从而激活细胞死亡途径。然而,MNH的功效取决于磁性纳米颗粒的物理化学性质,如尺寸、尺寸分布、磁性、生物相容性和在介质中的分散性。在这项研究中,旨在评估聚(乳酸-羟基乙酸)-聚(乙二醇)二嵌段共聚物(PLGA-b-PEG)包覆的单分散氧化铁纳米颗粒(IONs)作为MNH应用的有效介质的加热能力。为此,采用热分解法制备了粒径分布窄、平均粒径8.6 nm的单分散离子。得到的离子被聚乙二醇化plga聚合物包裹,并均匀分散在聚合物基质中,聚合物基质具有明确的球形。此外,计算了不同浓度(10、5、2.5和1.25 mg/mL) peg - plga - ions的比吸收率(SAR),反映了NPs到周围介质的散热量。在5 mg/mL peg - plga - ions (125 μgFe/mL)时,最大SAR值为313 W/g。综上所述,离子在聚乙二醇化plga基质中的均匀分散可能是提高基于mnh的癌症治疗SAR值的关键参数之一。
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