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Duality of Iron Oxide Nanoparticles in Cancer Therapy: Amplification of Heating Efficiency by Magnetic Hyperthermia and Photothermal Bimodal Treatment

机译:氧化铁纳米颗粒在癌症治疗中的对偶性:磁热疗和光热双峰治疗放大加热效率

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The pursuit of innovative, multifunctional, more efficient, and safer treatments is a major challenge in preclinical nanoparticle-mediated thermotherapeutic research. Here, we report that iron oxide nanoparticles have the dual capacity to act as both magnetic and photothermal agents. We further explore every key aspect of this magnetophotothermal approach, choosing iron oxide nanocubes for their high efficiency for the magnetic hyperthermia modality itself. In aqueous suspension, the nanocubes' exposure to both: an alternating magnetic field and near-infrared laser irradiation (808 nm), defined as the DUAL-mode, amplifies the heating effect 2- to 5-fold by comparison with magnetic stimulation alone, yielding unprecedented heating powers (specific loss powers) up to 5000 W/g. In cancer cells, the laser excitation restores the optimal efficiency of magnetic hyperthermia, otherwise inhibited by intracellular confinement, resulting in a remarkable heating efficiency in the DUAL-mode (up to 15-fold amplification), with respect to the magnetophotothermal mode. As a consequence, the dual action yielded complete apoptosis-mediated cell death. In solid tumors in vivo, single-mode treatments (magnetic or laser hyperthermia) reduced tumor growth, while DUAL-mode treatment resulted in complete tumor regression, mediated by heat-induced tumoral cell apoptosis and massive denaturation of the collagen fibers, and a long-lasting thermal efficiency over repeated treatments.
机译:在临床前纳米粒子介导的热疗法研究中,追求创新,多功能,更有效和更安全的治疗方法是一项重大挑战。在这里,我们报告氧化铁纳米粒子具有同时充当磁性和光热剂的双重能力。我们进一步探索该磁光热方法的每个关键方面,选择氧化铁纳米立方体以提高其对磁热疗形式本身的效率。在水悬浮液中,纳米立方体暴露于交变磁场和近红外激光辐照(808 nm)(定义为DUAL模式)两者,与单独的磁刺激相比,其加热效果可放大2至5倍,产生前所未有的高达5000 W / g的加热功率(特定损耗功率)。在癌细胞中,激光激发可恢复磁热疗的最佳效率,否则会受到细胞内限制的抑制,从而导致在DUAL模式下(相对于磁光热模式)显着的加热效率(放大15倍)。结果,双重作用产生了完全的细胞凋亡介导的细胞死亡。在体内实体瘤中,单模式治疗(磁性或激光热疗)会降低肿瘤的生长,而双模式治疗会导致肿瘤完全消退,这是由热诱导的肿瘤细胞凋亡和胶原纤维的大量变性介导的,并且持续时间较长。在重复处理中具有持久的热效率。

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