用磁力调节溶酶体以治疗癌症。

Yingze Li, Cheng Lv, Zhenguang Li, Chang Chen, Yu Cheng
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引用次数: 0

摘要

溶酶体在细胞的生化信号转导和氧化应激中发挥着核心作用。诱导溶酶体膜穿透(LMP)以导致肿瘤细胞溶酶体依赖性细胞死亡(LCD)是一种有效的癌症治疗策略。化学药物可以通过中和溶酶体内的质子或增强溶酶体膜的脆性来破坏溶酶体的稳定性。然而,由于溶酶体靶向性不足、代谢快以及对正常细胞的毒性等原因,传统药物在诱导溶酶体蛋白酶方面仍存在一些尚未解决的问题。随着纳米技术的发展,磁性纳米粒子已被证明可自然靶向溶酶体,为溶酶体调节提供了一种多功能工具。由于磁场具有良好的组织穿透性和时空可操作性,溶酶体磁调控在诱导 LMP 和 LCD 治疗癌症方面进展迅速。本综述全面探讨了溶酶体磁调控治疗癌症的策略。首先介绍了 LMP 诱导 LCD 的内在机制。然后,重点讨论了磁场的各种物理输出对溶酶体的调节。展望未来,这篇综述将揭示溶酶体磁调控的前景,启发未来癌症治疗中磁调控策略的研究。本文归类于治疗方法与药物发现 > 新兴技术 治疗方法与药物发现 > 用于肿瘤疾病的纳米药物 生物纳米技术方法 > 生物学中的纳米尺度系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Magnetic modulation of lysosomes for cancer therapy.

Magnetic modulation of lysosomes for cancer therapy.

Lysosomes play a central role in biochemical signal transduction and oxidative stress in cells. Inducing lysosome membrane penetration (LMP) to cause lysosomal-dependent cell death (LCD) in tumor cells is an effective strategy for cancer therapy. Chemical drugs can destroy the stability of lysosomes by neutralizing protons within the lysosomes or enhancing the fragility of the lysosomal membranes. However, there remain several unsolved problems of traditional drugs in LMP induction due to insufficient lysosomal targeting, fast metabolism, and toxicity in normal cells. With the development of nanotechnology, magnetic nanoparticles have been demonstrated to target lysosomes naturally, providing a versatile tool for lysosomal modulation. Combined with excellent tissue penetration and spatiotemporal manipulability of magnetic fields, magnetic modulation of lysosomes progresses rapidly in inducing LMP and LCD for cancer therapy. This review comprehensively discussed the strategies of magnetic modulation of lysosomes for cancer therapy. The intrinsic mechanisms of LMP-induced LCD were first introduced. Then, the modulation of lysosomes by diverse physical outputs of magnetic fields was emphatically discussed. Looking forward, this review will shed the light on the prospect of magnetic modulation of lysosomes, inspiring future research of magnetic modulation strategy in cancer therapy. This article is categorized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease Nanotechnology Approaches to Biology > Nanoscale Systems in Biology.

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