Alford Patrick W, Taber Larry A
Department of Biomedical Engineering, Washington University, Campus Box 1097, St Louis, MO 63130, USA.
J Biomech. 2003 Aug;36(8):1135-41. doi: 10.1016/s0021-9290(03)00089-7.
Epicardial strains were measured in Hamburger-Hamilton stage 11 and 12 embryonic chick hearts (1.6-2.0 days of incubation). These stages include part of the early phase of cardiac looping, as the initially straight heart tube bends and twists to form a curved c-shaped tube. By analyzing the motion of microbeads placed on the myocardial surface, we measured strains near the outer curvature, in the central region, and near the inner curvature of the primitive ventricle. No significant differences in strain were found between stages. Relative to end diastole, all three regions shortened by about 10% during systole in the circumferential direction, and the outer curvature shortened longitudinally by about 5%. In contrast, and unlike strains in older hearts, the inner curvature and central regions elongated by approximately 5-10% in the longitudinal direction during systole. These results are consistent with microstructural data and suggest that the material properties of the outer curvature are relatively isotropic, whereas the properties of the central and inner curvature regions are orthotropic, with contractile stress exerted primarily in the circumferential direction.
在心外膜应变的测量中,使用的是处于汉堡-汉密尔顿第11和12阶段的鸡胚心脏(孵化1.6 - 2.0天)。这些阶段包括心脏环化早期的一部分,最初笔直的心脏管会弯曲和扭转,形成一个弯曲的C形管。通过分析放置在心肌表面的微珠的运动,我们测量了原始心室的外曲率附近、中心区域以及内曲率附近的应变。在不同阶段之间未发现应变的显著差异。相对于舒张末期,在收缩期所有三个区域在圆周方向上缩短了约10%,外曲率在纵向方向上缩短了约5%。相比之下,与成年心脏的应变不同,在收缩期内曲率和中心区域在纵向方向上伸长了约5 - 10%。这些结果与微观结构数据一致,并表明外曲率的材料特性相对各向同性,而中心和内曲率区域的特性是正交各向异性的,收缩应力主要沿圆周方向施加。