Department of Earth Sciences, University of Bristol, Bristol, United Kingdom.
PLoS One. 2012;7(2):e31769. doi: 10.1371/journal.pone.0031769. Epub 2012 Feb 21.
Craniofacial sutures are a ubiquitous feature of the vertebrate skull. Previous experimental work has shown that bone strain magnitudes and orientations often vary when moving from one bone to another, across a craniofacial suture. This has led to the hypothesis that craniofacial sutures act to modify the strain environment of the skull, possibly as a mode of dissipating high stresses generated during feeding or impact. This study tests the hypothesis that the introduction of craniofacial sutures into finite element (FE) models of a modern domestic pig skull would improve model accuracy compared to a model without sutures. This allowed the mechanical effects of sutures to be assessed in isolation from other confounding variables. These models were also validated against strain gauge data collected from the same specimen ex vivo. The experimental strain data showed notable strain differences between adjacent bones, but this effect was generally not observed in either model. It was found that the inclusion of sutures in finite element models affected strain magnitudes, ratios, orientations and contour patterns, yet contrary to expectations, this did not improve the fit of the model to the experimental data, but resulted in a model that was less accurate. It is demonstrated that the presence or absence of sutures alone is not responsible for the inaccuracies in model strain, and is suggested that variations in local bone material properties, which were not accounted for by the FE models, could instead be responsible for the pattern of results.
颅面骨缝是脊椎动物颅骨的普遍特征。先前的实验工作表明,当从一块骨头移动到另一块骨头,穿过颅面骨缝时,骨应变的大小和方向经常会发生变化。这导致了这样一种假设,即颅面骨缝可以改变颅骨的应变环境,可能是一种耗散在进食或冲击过程中产生的高应力的方式。本研究检验了这样一个假设,即引入颅面骨缝到现代家猪颅骨的有限元(FE)模型中,与没有骨缝的模型相比,可以提高模型的准确性。这使得可以在不考虑其他混杂变量的情况下,单独评估骨缝的力学效应。这些模型还针对从同一标本离体收集的应变计数据进行了验证。实验应变数据显示相邻骨骼之间存在明显的应变差异,但在这两种模型中通常都没有观察到这种效应。结果发现,在有限元模型中包含骨缝会影响应变的大小、比值、方向和轮廓模式,但与预期相反,这并没有改善模型对实验数据的拟合,反而导致模型的准确性降低。研究表明,骨缝的存在与否本身并不是导致模型应变不准确的原因,并且认为局部骨材料特性的变化,而这些变化没有被 FE 模型所考虑,可能是导致结果模式的原因。