School of Mechanical Engineering, Purdue University, West Lafayette, IN, USA.
Birck Nanotechnology Center, Purdue University, West Lafayette, IN, USA.
Sci Rep. 2022 Jan 11;12(1):529. doi: 10.1038/s41598-021-04443-w.
Recent developments such as multi-harmonic Atomic Force Microscopy (AFM) techniques have enabled fast, quantitative mapping of nanomechanical properties of living cells. Due to their high spatiotemporal resolution, these methods provide new insights into changes of mechanical properties of subcellular structures due to disease or drug response. Here, we propose three new improvements to significantly improve the resolution, identification, and mechanical property quantification of sub-cellular and sub-nuclear structures using multi-harmonic AFM on living cells. First, microcantilever tips are streamlined using long-carbon tips to minimize long-range hydrodynamic interactions with the cell surface, to enhance the spatial resolution of nanomechanical maps and minimize hydrodynamic artifacts. Second, simultaneous Spinning Disk Confocal Microscopy (SDC) with live-cell fluorescent markers enables the unambiguous correlation between observed heterogeneities in nanomechanical maps with subcellular structures. Third, computational approaches are then used to estimate the mechanical properties of sub-nuclear structures. Results are demonstrated on living NIH 3T3 fibroblasts and breast cancer MDA-MB-231 cells, where properties of nucleoli, a deep intracellular structure, were assessed. The integrated approach opens the door to study the mechanobiology of sub-cellular structures during disease or drug response.
近年来,多谐原子力显微镜(AFM)技术等领域的发展使得快速、定量绘制活细胞纳米力学特性图谱成为可能。由于具有较高的时空分辨率,这些方法为研究亚细胞结构的力学性质变化提供了新的见解,包括疾病或药物反应引起的变化。在这里,我们提出了三种新的改进方法,以显著提高使用多谐 AFM 对活细胞进行亚细胞和亚核结构的分辨率、识别和力学性质定量分析的能力。首先,使用长碳 tips 对微悬臂梁 tips 进行流线型处理,以最小化与细胞表面的长程流体动力学相互作用,从而提高纳米力学图谱的空间分辨率并最小化流体动力学伪影。其次,活细胞荧光标记物的同时旋转盘共聚焦显微镜(SDC)能够明确将纳米力学图谱中的观察到的异质性与亚细胞结构相关联。最后,然后使用计算方法来估计亚核结构的力学性质。结果在 NIH 3T3 成纤维细胞和乳腺癌 MDA-MB-231 细胞上进行了验证,评估了细胞核仁等深部细胞内结构的性质。该综合方法为研究疾病或药物反应期间亚细胞结构的机械生物学特性打开了大门。