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通过原子力显微镜加载-卸载曲线分析测量发现,心肌病相关的核纤层蛋白A/C D192G突变破坏了心肌细胞的全细胞生物力学特性。

The Cardiomyopathy Lamin A/C D192G Mutation Disrupts Whole-Cell Biomechanics in Cardiomyocytes as Measured by Atomic Force Microscopy Loading-Unloading Curve Analysis.

作者信息

Lanzicher Thomas, Martinelli Valentina, Puzzi Luca, Del Favero Giorgia, Codan Barbara, Long Carlin S, Mestroni Luisa, Taylor Matthew R G, Sbaizero Orfeo

机构信息

Department of Engineering and Architecture, University of Trieste, Via Valerio 2, 34127, Trieste Italy.

International Center for Genetic Engineering and Biotechnology, Area di Ricerca, Padriciano 99, 34149 Trieste Italy.

出版信息

Sci Rep. 2015 Sep 1;5:13388. doi: 10.1038/srep13388.

Abstract

Atomic force microscopy (AFM) cell loading/unloading curves were used to provide comprehensive insights into biomechanical behavior of cardiomyocytes carrying the lamin A/C (LMNA) D192G mutation known to cause defective nuclear wall, myopathy and severe cardiomyopathy. Our results suggested that the LMNA D192G mutation increased maximum nuclear deformation load, nuclear stiffness and fragility as compared to controls. Furthermore, there seems to be a connection between this lamin nuclear mutation and cell adhesion behavior since LMNA D192G cardiomyocytes displayed loss of AFM probe-to-cell membrane adhesion. We believe that this loss of adhesion involves the cytoskeletal architecture since our microscopic analyses highlighted that mutant LMNA may also lead to a morphological alteration in the cytoskeleton. Furthermore, chemical disruption of the actin cytoskeleton by cytochalasin D in control cardiomyocytes mirrored the alterations in the mechanical properties seen in mutant cells, suggesting a defect in the connection between the nucleoskeleton, cytoskeleton and cell adhesion molecules in cells expressing the mutant protein. These data add to our understanding of potential mechanisms responsible for this fatal cardiomyopathy, and show that the biomechanical effects of mutant lamin extend beyond nuclear mechanics to include interference of whole-cell biomechanical properties.

摘要

原子力显微镜(AFM)细胞加载/卸载曲线被用于全面洞察携带已知会导致核膜缺陷、肌病和严重心肌病的 lamin A/C(LMNA)D192G 突变的心肌细胞的生物力学行为。我们的结果表明,与对照组相比,LMNA D192G 突变增加了最大核变形负荷、核硬度和脆性。此外,这种 lamin 核突变与细胞黏附行为之间似乎存在联系,因为 LMNA D192G 心肌细胞表现出 AFM 探针与细胞膜黏附的丧失。我们认为这种黏附丧失涉及细胞骨架结构,因为我们的显微镜分析突出显示突变型 LMNA 也可能导致细胞骨架的形态改变。此外,用细胞松弛素 D 对对照心肌细胞的肌动蛋白细胞骨架进行化学破坏反映了突变细胞中所见的力学性质改变,表明在表达突变蛋白的细胞中,核骨架、细胞骨架和细胞黏附分子之间的连接存在缺陷。这些数据增进了我们对这种致命心肌病潜在机制的理解,并表明突变型 lamin 的生物力学效应不仅限于核力学,还包括对全细胞生物力学性质的干扰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7a3/4555041/fbaf5259c995/srep13388-f1.jpg

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