Magneto-mechanical therapeutic effects and associated cell death pathways of magnetic nanocomposites with distinct geometries

材料科学 磁场 磁电机 程序性细胞死亡 纳米复合材料 细胞凋亡 纳米技术 生物 机械工程 磁铁 物理 工程类 生物化学 量子力学
作者
Chenyang Yao,Fang Yang,Jiaji Zhang,Junlie Yao,Yi Cao,Hao Peng,Stefan G. Stanciu,Costas A. Charitidis,Aiguo Wu
出处
期刊:Acta Biomaterialia [Elsevier]
卷期号:161: 238-249 被引量:9
标识
DOI:10.1016/j.actbio.2023.02.033
摘要

Recent years have witnessed important developments in the emerging field of magneto-mechanical therapies. While such approaches have been demonstrated as a highly efficient route to augment, complement, or entirely replace other therapeutic strategies, important aspects are still poorly understood. Among these, the dependence between the cell death pathway and the geometry of magnetic nanocomposites enabling magneto-mechanical therapies under a low-frequency rotating magnetic field (RMF) is yet to be deciphered. To provide insights into this important problem, we evaluate the cell death pathway for two magnetic nanocomposites with highly distinct geometries: Zn0.2Fe2.8O4-PLGA magnetic nanospheres (MNSs) and Zn0.2Fe2.8O4-PLGA magnetic nanochains (MNCs). We show that under exposure to an RMF, the MNSs and the MNCs exhibit a corkscrewed circular propulsion mode and a steering propulsion mode, respectively. This distinct behavior, with important implications for the associated magneto-mechanical forces exerted by these nanomaterials on surrounding structures (e.g., the cellular membrane), depends on their specific geometries. Next, using numerical simulations and cell viability experiments, we demonstrate that the field strength of the RMF and the rotating speed of the MNSs or MNCs have strong implications for their magneto-mechanical therapeutic performance. Last, we reveal that the magneto-mechanical effects of MNSs are more prone to induce cell apoptosis, whereas those of the MNCs favor instead cell necrosis. Overall, this work enhances the current understanding of the dependences existing between the magneto-mechanical therapeutic effects of magnetic nanocomposites with different geometries and associated cell death pathways, paving the way for novel functionalization routes which could enable significantly enhanced cures and biomedical tools. Under exposure to an RMF, the investigated MNSs and MNCs exhibit corkscrewed circular and steering propulsion modes, respectively; When actuated by an RMF, MNCs exhibit higher therapeutic performance via magneto-mechanical forces exerted on cell parts, compared to MNSs; The magneto-mechanical effects of MNSs are more prone to induce cell apoptosis, whereas those of the MNCs favor instead cell necrosis.
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