Orthopaedic and Developmental Biomechanics Laboratory, Department of Mechanical Engineering, Boston University, Boston, MA 02215, USA.
J Biomech. 2010 Aug 26;43(12):2418-24. doi: 10.1016/j.jbiomech.2010.04.019. Epub 2010 May 23.
Defining how mechanical cues regulate tissue differentiation during skeletal healing can benefit treatment of orthopaedic injuries and may also provide insight into the influence of the mechanical environment on skeletal development. Different global (i.e., organ-level) mechanical loads applied to bone fractures or osteotomies are known to result in different healing outcomes. However, the local stimuli that promote formation of different skeletal tissues have yet to be established. Finite element analyses can estimate local stresses and strains but require many assumptions regarding tissue material properties and boundary conditions. This study used an experimental approach to investigate relationships between the strains experienced by tissues in a mechanically stimulated osteotomy gap and the patterns of tissue differentiation that occur during healing. Strains induced by the applied, global mechanical loads were quantified on the mid-sagittal plane of the callus using digital image correlation. Strain fields were then compared to the distribution of tissue phenotypes, as quantified by histomorphometry, using logistic regression. Significant and consistent associations were found between the strains experienced by a region of the callus and the tissue type present in that region. Specifically, the probability of encountering cartilage increased, and that of encountering woven bone decreased, with increasing octahedral shear strain and, to a lesser extent, maximum principal strain. Volumetric strain was the least consistent predictor of tissue type, although towards the end of the four-week stimulation timecourse, cartilage was associated with increasingly negative volumetric strains. These results indicate that shear strain may be an important regulator of tissue fate during skeletal healing.
定义机械线索如何调节骨骼愈合过程中的组织分化,可以有益于治疗骨科损伤,并且可能还深入了解机械环境对骨骼发育的影响。已知施加到骨骨折或截骨术上的不同全局(即器官水平)机械载荷会导致不同的愈合结果。但是,促进形成不同骨骼组织的局部刺激尚未确定。有限元分析可以估计局部应力和应变,但需要对组织材料特性和边界条件做出许多假设。本研究采用实验方法研究了在机械刺激的骨切开间隙中组织经历的应变与愈合过程中发生的组织分化模式之间的关系。使用数字图像相关法在骨痂的中矢状面上量化了施加的全局机械载荷引起的应变。然后,使用逻辑回归将应变场与组织表型的分布(通过组织形态计量学进行量化)进行比较。在骨痂的一个区域中经历的应变与该区域中存在的组织类型之间发现了显著且一致的关联。具体而言,随着八面体剪切应变的增加(在一定程度上还随着最大主应变的增加),遇到软骨的概率增加,遇到编织骨的概率降低。体积应变是组织类型最不一致的预测指标,尽管在四周的刺激时间过程的最后,软骨与体积应变越来越负相关。这些结果表明,剪切应变可能是骨骼愈合过程中组织命运的重要调节因素。