Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, 1700, Fribourg, Switzerland.
Department of Chemistry, University of Fribourg, Chemin du Musée 9, 1700, Fribourg, Switzerland.
Adv Mater. 2018 May;30(19):e1704463. doi: 10.1002/adma.201704463. Epub 2018 Jan 9.
Progress in the field of nanoparticles has enabled the rapid development of multiple products and technologies; however, some nanoparticles can pose both a threat to the environment and human health. To enable their safe implementation, a comprehensive knowledge of nanoparticles and their biological interactions is needed. In vitro and in vivo toxicity tests have been considered the gold standard to evaluate nanoparticle safety, but it is becoming necessary to understand the impact of nanosystems on cell mechanics. Here, the interaction between particles and cells, from the point of view of cell mechanics (i.e., bionanomechanics), is highlighted and put in perspective. Specifically, the ability of intracellular and extracellular nanoparticles to impair cell adhesion, cytoskeletal organization, stiffness, and migration are discussed. Furthermore, the development of cutting-edge, nanotechnology-driven tools based on the use of particles allowing the determination of cell mechanics is emphasized. These include traction force microscopy, colloidal probe atomic force microscopy, optical tweezers, magnetic manipulation, and particle tracking microrheology.
纳米颗粒领域的进展使得多种产品和技术得以迅速发展;然而,一些纳米颗粒可能对环境和人类健康构成威胁。为了能够安全地实施这些纳米颗粒,我们需要全面了解纳米颗粒及其生物相互作用。体外和体内毒性测试一直被认为是评估纳米颗粒安全性的金标准,但现在有必要了解纳米系统对细胞力学的影响。在这里,从细胞力学的角度(即生物纳米力学)强调并探讨了颗粒与细胞之间的相互作用。具体而言,讨论了细胞内和细胞外纳米颗粒损害细胞黏附、细胞骨架组织、硬度和迁移的能力。此外,还强调了基于使用允许确定细胞力学的颗粒的尖端纳米技术驱动工具的发展。这些工具包括牵引力显微镜、胶体探针原子力显微镜、光镊、磁操纵和颗粒跟踪微流变学。