Kaushik Swati, Thomas Jijo, Panwar Vineeta, Ali Hasan, Chopra Vianni, Sharma Anjana, Tomar Ruchi, Ghosh Deepa
Institute of Nano Science and Technology, Habitat Centre, Phase 10, Mohali, Punjab 160062, India.
ACS Appl Bio Mater. 2020 Feb 17;3(2):779-788. doi: 10.1021/acsabm.9b00720. Epub 2020 Jan 27.
Despite the promising role of magnetic hyperthermia in cancer therapy, its use in patients has been restricted by hurdles that include inefficient targeting of magnetic particles to the tumor site, limited bioavailability, and high toxicity, etc. Taking advantage of the unique metabolic property of cancer cells, we explored the potential of these cells to biosynthesize magnetic nanoparticles for potential hyperthermia applications. Treatment of cancer cells with a mixture of FeCl and zinc gluconate resulted in a significant increase in intracellular Fe and Zn content in these cells. Exposure of these cells to an alternating magnetic field (AMF) for 30 min resulted in a substantial temperature rise of 5-6 °C. The in situ formed particles were identified as iron oxide and ZnO nanoparticles. Based on the magnetic property and size, the iron oxide nanoparticles were classified as superparamagnetic iron oxide nanoparticles (SPIONS) comprising a mixture of magnetite (Fe-δO) and maghemite (γ-FeO). The role of reactive oxygen species (HO) and the involvement of the glycolytic pathway in the biosynthesis of the nanoparticles were confirmed using appropriate in vitro studies. The simplicity of treatment, the specificity of cells capable of synthesis of SPIONS, and the hyperthermia response observed in cancer cells indicate a promising strategy to achieve effective magnetic hyperthermia for cancer therapy.
尽管磁热疗在癌症治疗中具有广阔前景,但其在患者中的应用受到诸多障碍的限制,包括磁性粒子对肿瘤部位的靶向效率低下、生物利用度有限以及高毒性等。利用癌细胞独特的代谢特性,我们探索了这些细胞生物合成磁性纳米粒子用于潜在热疗应用的潜力。用氯化铁和葡萄糖酸锌混合物处理癌细胞导致这些细胞内铁和锌含量显著增加。将这些细胞暴露于交变磁场(AMF)30分钟导致温度大幅升高5 - 6°C。原位形成的颗粒被鉴定为氧化铁和氧化锌纳米粒子。基于磁性和尺寸,氧化铁纳米粒子被归类为超顺磁性氧化铁纳米粒子(SPIONS),其由磁铁矿(Fe₃O₄)和磁赤铁矿(γ - Fe₂O₃)的混合物组成。使用适当的体外研究证实了活性氧(H₂O₂)的作用以及糖酵解途径在纳米粒子生物合成中的参与。治疗的简便性、能够合成SPIONS的细胞的特异性以及在癌细胞中观察到的热疗反应表明这是一种实现有效磁热疗用于癌症治疗的有前景的策略。