仿形(计算机编程)
材料科学
海马体
纳米技术
神经科学
低聚物
计算机科学
生物
操作系统
高分子化学
作者
Dandan Li,Jiang Li,Jiao Hu,Mingjie Tang,Peng Xiu,Guo Yunchang,Tunan Chen,Ning Mu,Lihua Wang,Xuehua Zhang,Guizhao Liang,Huabin Wang,Chunhai Fan
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-03-07
卷期号:17 (6): 5517-5527
被引量:8
标识
DOI:10.1021/acsnano.2c10861
摘要
Understanding how Aβ42 oligomers induce changes in neurons from a mechanobiological perspective has important implications in neuronal dysfunction relevant to neurodegenerative diseases. However, it remains challenging to profile the mechanical responses of neurons and correlate the mechanical signatures to the biological properties of neurons given the structural complexity of cells. Here, we quantitatively investigate the nanomechanical properties of primary hippocampus neurons upon exposure to Aβ42 oligomers at the single neuron level by using atomic force microscopy (AFM). We develop a method termed heterogeneity-load-unload nanomechanics (HLUN), which exploits the AFM force spectra in the whole loading-unloading cycle, allowing comprehensive profiling of the mechanical properties of living neurons. We extract four key nanomechanical parameters, including the apparent Young's modulus, cell spring constant, normalized hysteresis, and adhesion work, that serve as the nanomechanical signatures of neurons treated with Aβ42 oligomers. These parameters are well-correlated with neuronal height increase, cortical actin filament strengthening, and calcium concentration elevation. Thus, we establish an HLUN method-based AFM nanomechanical analysis tool for single neuron study and build an effective correlation between the nanomechanical profile of the single neurons and the biological effects triggered by Aβ42 oligomers. Our finding provides useful information on the dysfunction of neurons from the mechanobiological perspective.
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