Impact of the intracellular mechanical microenvironment of breast cancer and normal mammary epithelial cells on magnetic hyperthermia of Fe3O4 nanoparticles.

IF 9.6
Man Wang, Huajian Chen, Rui Sun, Tianjiao Zeng, Chengyu Lu, Toru Yoshitomi, Hiroaki Mamiya, Masaki Takeguchi, Naoki Kawazoe, Yingnan Yang, Guoping Chen
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引用次数: 0

Abstract

Magnetic hyperthermia has been widely investigated as a promising cancer treatment modality. Efficient heat generation by magnetic nanoparticles under an alternating magnetic field (AMF) is critical for therapeutic efficacy. While extracellular conditions in the tumor microenvironment are considered key determinants of heat generation, the impact of the intracellular microenvironment has received less attention. This study aimed to elucidate how cytoskeletal architecture and intracellular mechanical properties-key components of the intracellular microenvironment-affect the heat generation and hyperthermia efficiency of magnetic Fe3O4 nanoparticles (Fe3O4 NPs) in human breast carcinomas and normal human mammary epithelial cells. Under AMF exposure, identical amounts of internalized Fe3O4 NPs produced different heating effects in the two cell types, resulting in differential magnetic hyperthermia efficiency. Fe3O4 NPs internalized by breast carcinomas produced greater temperature increase and induced apoptosis more effectively than those in normal mammary epithelial cells. Moreover, alternating current susceptibility analysis revealed that the softer intracellular cytoskeletal mechanics of breast carcinomas enhanced magnetothermal conversion compared with that of normal mammary epithelial cells. These findings highlight the critical role of intracellular cytoskeletal mechanics in regulating the magnetothermal behavior of Fe3O4 NPs during magnetic hyperthermia. STATEMENT OF SIGNIFICANCE: This study reveals the critical role of the intracellular mechanical microenvironment of breast cancer cells in magnetothermal conversion of magnetic nanoparticles. Breast cancer cells have less organized cytoskeletal structure and softer intracellular microenvironment that are inherently more conducive to the magnetothermal conversion and heating performance of Fe3O4 NPs than normal cells. Fe3O4 NPs internalized by breast cancer cells generate higher local temperatures and induce significantly greater apoptotic effects. These findings highlight the breast cancer cell intracellular microenvironment as a key determinant in the effectiveness of magnetic hyperthermia, offering new insights into the design and optimization of nanoparticle-based cancer therapies.

乳腺癌和正常乳腺上皮细胞胞内机械微环境对Fe3O4纳米粒子磁热疗的影响
磁热疗作为一种有前景的癌症治疗方式已被广泛研究。磁性纳米颗粒在交变磁场(AMF)下的高效产热对治疗效果至关重要。虽然肿瘤微环境中的细胞外条件被认为是热产生的关键决定因素,但细胞内微环境的影响受到的关注较少。本研究旨在阐明细胞骨架结构和细胞内力学性能(细胞内微环境的关键组成部分)如何影响磁性Fe3O4纳米颗粒(Fe3O4 NPs)在人乳腺癌和正常人乳腺上皮细胞中的产热和热疗效率。在AMF暴露下,相同量的Fe3O4 NPs内化在两种细胞类型中产生不同的加热效应,导致不同的磁热疗效率。乳腺癌内化的Fe3O4 NPs比正常乳腺上皮细胞内化的Fe3O4 NPs产生更大的温度升高和更有效的诱导凋亡。此外,交流电敏感性分析显示,与正常乳腺上皮细胞相比,乳腺癌细胞内更柔软的细胞骨架力学增强了磁热转换。这些发现强调了细胞内细胞骨架力学在磁热疗过程中调节Fe3O4 NPs磁热行为中的关键作用。意义声明:本研究揭示了乳腺癌细胞内机械微环境在磁性纳米颗粒磁热转化中的关键作用。乳腺癌细胞具有较松散的细胞骨架结构和较软的细胞内微环境,这比正常细胞更有利于Fe3O4 NPs的磁热转换和加热性能。被乳腺癌细胞内化的Fe3O4 NPs产生更高的局部温度,并诱导更大的凋亡效应。这些发现强调了乳腺癌细胞内微环境是磁热疗法有效性的关键决定因素,为基于纳米颗粒的癌症疗法的设计和优化提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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