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通过扫描离子电导显微镜对细胞-软水凝胶系统力学性能进行非侵入性纳米分辨率评估

Non-Invasive Nanometer Resolution Assessment of Cell-Soft Hydrogel System Mechanical Properties by Scanning Ion Conductance Microscopy.

作者信息

Tikhonova Tatiana N, Barkovaya Anastasia V, Efremov Yuri M, Mamed-Nabizade Vugara V, Kolmogorov Vasilii S, Timashev Peter S, Sysoev Nikolay N, Fadeev Victor V, Gorelkin Petr V, Adler-Abramovich Lihi, Erofeev Alexander S, Shirshin Evgeny A

机构信息

Department of Physics, M.V. Lomonosov Moscow State University, 1/2 Leninskie Gory, 119991 Moscow, Russia.

Institute for Regenerative Medicine, Sechenov University, 8-2 Trubetskaya St., 119991 Moscow, Russia.

出版信息

Int J Mol Sci. 2024 Dec 16;25(24):13479. doi: 10.3390/ijms252413479.

Abstract

Biomimetic hydrogels have garnered increased interest due to their considerable potential for use in various fields, such as tissue engineering, 3D cell cultivation, and drug delivery. The primary challenge for applying hydrogels in tissue engineering is accurately evaluating their mechanical characteristics. In this context, we propose a method using scanning ion conductance microscopy (SICM) to determine the rigidity of living human breast cancer cells MCF-7 cells grown on a soft, self-assembled Fmoc-FF peptide hydrogel. Moreover, it is demonstrated that the map of Young's modulus distribution obtained by the SICM method allows for determining the core location. The Young's modules for MCF-7 cells decrease with the substrate stiffening, with values of 1050 Pa, 835 Pa, and 600 Pa measured on a Petri dish, Fmoc-FF hydrogel, and Fmoc-FF/chitosan hydrogel, respectively. A comparative analysis of the SICM results and the data obtained by atomic force microscopy was in good agreement, allowing for the use of a composite cell-substrate model (CoCS) to evaluate the 'soft substrate effect'. Using the CoCS model allowed us to conclude that the MCF-7 softening was due to the cells' mechanical properties variations due to cytoskeletal changes. This research provides immediate insights into changes in cell mechanical properties resulting from different soft scaffold substrates.

摘要

仿生水凝胶因其在组织工程、3D细胞培养和药物递送等各个领域的巨大应用潜力而备受关注。将水凝胶应用于组织工程的主要挑战是准确评估其力学特性。在此背景下,我们提出一种使用扫描离子电导显微镜(SICM)来测定在柔软的、自组装的Fmoc-FF肽水凝胶上生长的活的人乳腺癌MCF-7细胞刚性的方法。此外,结果表明通过SICM方法获得的杨氏模量分布图可用于确定核心位置。MCF-7细胞的杨氏模量随底物硬度增加而降低,在培养皿、Fmoc-FF水凝胶和Fmoc-FF/壳聚糖水凝胶上测得的值分别为1050 Pa、835 Pa和600 Pa。SICM结果与原子力显微镜获得的数据的对比分析结果吻合良好,这使得可以使用复合细胞-底物模型(CoCS)来评估“软底物效应”。使用CoCS模型使我们得出结论,MCF-7细胞的软化是由于细胞骨架变化导致细胞力学性能改变所致。这项研究为不同软支架底物引起的细胞力学性能变化提供了直接见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9e7/11678895/8ad45d901db0/ijms-25-13479-g001.jpg

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