Dissecting the Inorganic Nanoparticle-Driven Interferences on Adhesome Dynamics

Vladimir Mulens-Arias
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引用次数: 1

Abstract

Inorganic nanoparticles have emerged as an attractive theranostic tool applied to different pathologies such as cancer. However, the increment in inorganic nanoparticle application in biomedicine has prompted the scientific community to assess their potential toxicities, often preventing them from entering clinical settings. Cytoskeleton network and the related adhesomes nest are present in most cellular processes such as proliferation, migration, and cell death. The nanoparticle treatment can interfere with the cytoskeleton and adhesome dynamics, thus inflicting cellular damage. Therefore, it is crucial dissecting the molecular mechanisms involved in nanoparticle cytotoxicity. This review will briefly address the main characteristics of different adhesion structures and focus on the most relevant effects of inorganic nanoparticles with biomedical potential on cellular adhesome dynamics. Besides, the review put into perspective the use of inorganic nanoparticles for cytoskeleton targeting or study as a versatile tool. The dissection of the molecular mechanisms involved in the nanoparticle-driven interference of adhesome dynamics will facilitate the future development of nanotheranostics targeting cytoskeleton and adhesomes to tackle several diseases, such as cancer.
无机纳米粒子驱动的对成体动力学的干扰
无机纳米颗粒已经成为一种有吸引力的治疗工具,应用于不同的病理学,如癌症。然而,无机纳米颗粒在生物医学中应用的增加促使科学界评估其潜在毒性,通常阻止其进入临床环境。细胞骨架网络和相关的粘附体巢存在于大多数细胞过程中,如增殖、迁移和细胞死亡。纳米颗粒处理可以干扰细胞骨架和粘附动力学,从而造成细胞损伤。因此,剖析纳米颗粒细胞毒性的分子机制至关重要。这篇综述将简要介绍不同粘附结构的主要特征,并重点介绍具有生物医学潜力的无机纳米颗粒对细胞粘附动力学的最相关影响。此外,该综述展望了无机纳米颗粒作为一种多功能工具用于细胞骨架靶向或研究的前景。对纳米颗粒驱动的粘附体动力学干扰所涉及的分子机制的剖析将促进靶向细胞骨架和粘附体的纳米治疗学的未来发展,以解决多种疾病,如癌症。
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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