Fuseler John W, Millette Clarke F, Davis Jeffery M, Carver Wayne
Department of Cell and Developmental Biology and Anatomy, University of South Carolina, School of Medicine, Columbia, South Carolina 29209, USA.
Microsc Microanal. 2007 Apr;13(2):133-43. doi: 10.1017/S1431927607070225.
Cardiac fibroblasts are the most numerous cells in the heart and are critical in the formation and normal functioning of the organ. Cardiac fibroblasts are firmly attached to and surrounded by extracellular matrix (ECM). Mechanical forces transmitted through interaction with the ECM can result in changes of overall cellular shape, cytoskeletal organization, proliferation, and gene expression of cardiac fibroblasts. These responses may be different in the normally functioning heart, when compared with various pathological conditions, including inflammation or hypertrophy. It is apparent that cellular phenotype and physiology, in turn, are affected by multiple signal transduction pathways modulated directly by the state of polymerization of the actin cytoskeleton. Morphological changes in actin organization resulting from response to adverse conditions in fibroblasts and other cell types are basically descriptive. Some studies have approached quantifying changes in actin cytoskeletal morphology, but these have involved complex and difficult procedures. In this study, we apply image analysis and non-Euclidian geometrical fractal analysis to quantify and describe changes induced in the actin cytoskeleton of cardiac fibroblasts responding to mechanical stress. Characterization of these rapid responses of fibroblasts to mechanical stress may provide insight into the regulation of fibroblasts behavior and gene expression during heart development and disease.
心脏成纤维细胞是心脏中数量最多的细胞,对心脏器官的形成和正常功能至关重要。心脏成纤维细胞牢固地附着于细胞外基质(ECM)并被其包围。通过与ECM相互作用传递的机械力可导致心脏成纤维细胞的整体细胞形态、细胞骨架组织、增殖和基因表达发生变化。与包括炎症或肥大在内的各种病理状况相比,这些反应在正常功能的心脏中可能有所不同。显然,细胞表型和生理学反过来又受到由肌动蛋白细胞骨架聚合状态直接调节的多种信号转导途径的影响。成纤维细胞和其他细胞类型对不利条件的反应导致的肌动蛋白组织形态学变化基本上是描述性的。一些研究已尝试对肌动蛋白细胞骨架形态的变化进行量化,但这些研究涉及复杂且困难的程序。在本研究中,我们应用图像分析和非欧几里得几何分形分析来量化和描述机械应力作用下心脏成纤维细胞肌动蛋白细胞骨架中诱导的变化。对成纤维细胞对机械应力的这些快速反应的表征可能有助于深入了解心脏发育和疾病过程中纤维母细胞行为和基因表达的调控。