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Enhancing Therapeutic Efficacy through Designed Aggregation of Nanoparticles

机译:通过设计的纳米粒子聚集增强治疗功效

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摘要

Particle size is a key determinant of biological performance of sub-micron size delivery systems. Previous studies investigating the effect of particle size have primarily focused on well-dispersed nanoparticles. However, inorganic nanoparticles are prone to aggregation in biological environments. In our studies, we examined the consequence of aggregation on superparamagnetic iron oxide (SPIO) nanoparticle-induced magnetic hyperthermia. Here we show that the extent and mechanism of hyperthermia-induced cell kill is highly dependent on the aggregation state of SPIO nanoparticles. Well-dispersed nanoparticles induced apoptosis, similar to that observed with conventional hyperthermia. Sub-micron size aggregates, on the other hand, induced temperature-dependent autophagy through generation of oxidative stress. Micron size aggregates caused rapid membrane damage, resulting in acute cell kill. Overall, this work highlights the potential for developing highly effective anticancer therapeutics through designed aggregation of nano delivery systems.
机译:粒度是决定亚微米粒度输送系统生物学性能的关键因素。先前研究粒径影响的研究主要集中在分散良好的纳米颗粒上。然而,无机纳米颗粒在生物环境中易于聚集。在我们的研究中,我们检查了超顺磁性氧化铁(SPIO)纳米颗粒诱导的磁热疗的聚集结果。在这里,我们表明热疗诱导细胞杀伤的程度和机制高度依赖于SPIO纳米颗粒的聚集状态。分散良好的纳米颗粒可诱导凋亡,这与常规热疗相似。另一方面,亚微米尺寸的聚集体通过产生氧化应激而诱导了温度依赖性自噬。微米级的聚集体会引起快速的膜破坏,导致急性细胞死亡。总的来说,这项工作强调了通过设计的纳米递送系统聚集体开发高效抗癌治疗剂的潜力。

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