Kokkinos Petros A, Zarkadis Ioannis K, Panidis Thrassos T, Deligianni Despina D
Biomedical Engineering Laboratory, Department of Mechanical Engineering and Aeronautics, University of Patras, Rion, 26500, Patra, Greece.
J Mater Sci Mater Med. 2009 Mar;20(3):655-65. doi: 10.1007/s10856-008-3602-3. Epub 2008 Oct 21.
The aim of the present investigation was to study the effects of mechanical strain on the orthopedic biomaterial Ti-6Al-4V-osteoblast interface, using an in vitro model. Homogeneous strain was applied to Human Bone Marrow derived Osteoblasts (HBMDOs) cultured on Ti-6Al-4V, at levels which are considered physiological, by a four-point bending mechanostimulatory system. A simple model for the estimation of maximum hydrodynamic shear stresses developed on cell culture layer and induced by nutrient medium flow during mechanical loading, as a function of the geometry of the culture plate and the load characteristics, is proposed. Shear stresses were lower than those which can elicit cell response. Mechanical loading was found that contributes to the regulation of osteoblast differentiation by influencing the expression of the osteoblast-specific transcription factor Cbfa1, both at the mRNA and protein level, and also the osteocalcin expression, whereas osteopontin gene expression was unaffected by mechanical loading at all experimental conditions.
本研究的目的是使用体外模型研究机械应变对骨科生物材料钛-6铝-4钒-成骨细胞界面的影响。通过四点弯曲机械刺激系统,将均匀应变施加于在钛-6铝-4钒上培养的人骨髓来源的成骨细胞(HBMDOs),应变水平为生理水平。提出了一个简单模型,用于估计在机械加载过程中细胞培养层上由营养培养基流动产生并诱导的最大流体动力剪切应力,该应力是培养板几何形状和负载特性的函数。剪切应力低于可引发细胞反应的应力。研究发现,机械加载通过影响成骨细胞特异性转录因子Cbfa1在mRNA和蛋白质水平的表达以及骨钙素的表达,有助于调节成骨细胞分化,而在所有实验条件下,骨桥蛋白基因表达均不受机械加载的影响。