Persano Francesca, Parodi Alessandro, Pallaeva Tatiana, Kolesova Ekaterina, Zamyatnin Andrey A, Pokrovsky Vadim S, De Matteis Valeria, Leporatti Stefano, Cascione Mariafrancesca
Mathematics and Physics Department "Ennio De Giorgi", University of Salento, Via Arnesano, 73100 Lecce, Italy.
CNR Nanotec-Istituto di Nanotecnologia, Via Monteroni, 73100 Lecce, Italy.
Cancers (Basel). 2025 Mar 2;17(5):858. doi: 10.3390/cancers17050858.
The implementation of novel analytic methodologies in cancer and biomedical research has enabled the quantification of parameters that were previously disregarded only a few decades ago. A notable example of this paradigm shift is the widespread integration of atomic force microscopy (AFM) into biomedical laboratories, significantly advancing our understanding of cancer cell biology and treatment response. AFM allows for the meticulous monitoring of different parameters at the molecular and nanoscale levels, encompassing critical aspects such as cell morphology, roughness, adhesion, stiffness, and elasticity. These parameters can be systematically investigated in correlation with specific cell treatment, providing important insights into morpho-mechanical properties during normal and treated conditions. The resolution of this system holds the potential for its systematic adoption in clinics; its application could produce useful diagnostic information regarding the aggressiveness of cancer and the efficacy of treatment. This review endeavors to analyze the current literature, underscoring the pivotal role of AFM in biomedical research, especially in cancer cases, while also contemplating its prospective application in a clinical context.
新型分析方法在癌症和生物医学研究中的应用,使得几十年前还被忽视的参数得以量化。这种范式转变的一个显著例子是原子力显微镜(AFM)广泛应用于生物医学实验室,极大地推动了我们对癌细胞生物学和治疗反应的理解。AFM能够在分子和纳米尺度上对不同参数进行细致监测,包括细胞形态、粗糙度、粘附力、硬度和弹性等关键方面。这些参数可以与特定的细胞处理方式相关联进行系统研究,从而深入了解正常和处理条件下的形态力学特性。该系统的分辨率使其有可能在临床上得到系统应用;其应用可以产生有关癌症侵袭性和治疗效果的有用诊断信息。本综述旨在分析当前文献,强调AFM在生物医学研究中的关键作用,特别是在癌症病例中,同时也探讨其在临床环境中的潜在应用。