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微管调节心肌细胞抵抗剪切力的硬度。

Microtubules modulate the stiffness of cardiomyocytes against shear stress.

作者信息

Nishimura Satoshi, Nagai Shinya, Katoh Masayoshi, Yamashita Hiroshi, Saeki Yasutake, Okada Jun-ichi, Hisada Toshiaki, Nagai Ryozo, Sugiura Seiryo

机构信息

Department of Cardiovascular Medicine, Graduate School of Medicine, The University of Tokyo, Japan.

出版信息

Circ Res. 2006 Jan 6;98(1):81-7. doi: 10.1161/01.RES.0000197785.51819.e8. Epub 2005 Nov 23.

Abstract

Although microtubules are involved in various pathological conditions of the heart including hypertrophy and congestive heart failure, the mechanical role of microtubules in cardiomyocytes under such conditions is not well understood. In the present study, we measured multiple aspects of the mechanical properties of single cardiomyocytes, including tensile stiffness, transverse (indentation) stiffness, and shear stiffness in both transverse and longitudinal planes using carbon fiber-based systems and compared these parameters under control, microtubule depolymerized (colchicine treated), and microtubule hyperpolymerized (paclitaxel treated) conditions. From all of these measurements, we found that only the stiffness against shear in the longitudinal plane was modulated by the microtubule cytoskeleton. A simulation model of the myocyte in which microtubules serve as compression-resistant elements successfully reproduced the experimental results. In the complex strain field that living myocytes experience in the body, observed changes in shear stiffness may have a significant influence on the diastolic property of the diseased heart.

摘要

尽管微管参与了心脏的各种病理状况,包括心肌肥大和充血性心力衰竭,但在此类情况下微管在心肌细胞中的机械作用尚未得到充分了解。在本研究中,我们使用基于碳纤维的系统测量了单个心肌细胞机械特性的多个方面,包括拉伸刚度、横向(压痕)刚度以及横向和纵向平面的剪切刚度,并在对照、微管解聚(秋水仙碱处理)和微管超聚合(紫杉醇处理)条件下比较了这些参数。从所有这些测量中,我们发现只有纵向平面的抗剪切刚度受到微管细胞骨架的调节。一个将微管作为抗压元件的心肌细胞模拟模型成功再现了实验结果。在活心肌细胞在体内所经历的复杂应变场中,观察到的剪切刚度变化可能对患病心脏的舒张特性有重大影响。

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