Department of Mechanical Engineering and Science, Graduate School of Engineering, Kyoto University, Sakyo, Kyoto 606-8501, Japan.
J Biomech. 2009 Nov 13;42(15):2507-12. doi: 10.1016/j.jbiomech.2009.07.006. Epub 2009 Aug 8.
Osteocytes embedded in calcified bone matrix have been widely believed to play important roles in mechanosensing to achieve adaptive bone remodeling in a changing mechanical environment. In vitro studies have clarified several types of mechanical stimuli such as hydrostatic pressure, fluid shear stress, and direct deformation influence osteocyte functions. However, osteocyte response to mechanical stimuli in the bone matrix has not been clearly understood. In this study, we observed the osteocyte calcium signaling response to the quantitatively applied deformation in the bone matrix. A novel experimental system was developed to apply deformation to cultured bone tissue with osteocytes on a microscope stage. As a mechanical stimulus to the osteocytes in bone matrix, in-plane shear deformation was applied using a pair of glass microneedles to bone fragments, obtained from 13-day-old embryonic chick calvariae. Deformation of bone matrix and cells was quantitatively evaluated using an image correlation method by applying for differential interference contrast images of the matrix and fluorescent images of immunolabeled osteocytes, together with imaging of the cellular calcium transient using a ratiometric method. As a result, it was confirmed that the newly developed system enables us to apply deformation to bone matrix and osteocytes successfully under the microscope without significant focal plane shift or deviation from the observation view field. The system could be a basis for further development to investigate the mechanosensing mechanism of osteocytes in bone matrix through examination of various types of rapid biochemical signaling responses and intercellular communication induced by matrix deformation.
骨细胞嵌入矿化的骨基质中,被广泛认为在机械感受中发挥重要作用,以实现适应不断变化的机械环境的骨重塑。体外研究已经阐明了几种机械刺激,如静水压力、流体切应力和直接变形,影响骨细胞的功能。然而,骨细胞对骨基质中机械刺激的反应还没有被清楚地理解。在这项研究中,我们观察了骨细胞对骨基质中定量施加的变形的钙信号反应。开发了一种新的实验系统,用于在显微镜台上培养具有骨细胞的骨组织上施加变形。作为骨基质中骨细胞的机械刺激,使用一对玻璃微针对从小鸡 13 日龄颅骨获得的骨碎片施加平面内剪切变形。通过应用基质的相差对比图像和免疫标记骨细胞的荧光图像以及比率法成像细胞钙瞬变,使用图像相关方法对骨基质和细胞的变形进行定量评估。结果证实,新开发的系统能够在不发生明显焦平面移动或偏离观察视场的情况下,在显微镜下成功地将变形施加到骨基质和骨细胞上。该系统可以进一步发展,通过检查基质变形引起的各种快速生化信号反应和细胞间通讯,研究骨基质中骨细胞的机械感受机制。