Goldschmidt Stephanie, Zimmerman Catherine, Collins Caitlyn, Hetzel Scott, Ploeg Heidi-Lynn, Soukup Jason W
1 Department of Surgical Sciences, School of Veterinary Medicine, University of Wisconsin-Madison, Madison, WI, USA.
2 Bone and Joint Biomechanics Lab, College of Engineering, University of Wisconsin-Madison, Madison, WI, USA.
J Vet Dent. 2017 Mar;34(1):8-17. doi: 10.1177/0898756417705229. Epub 2017 Apr 27.
Biomechanical studies of the elongated canine tooth of animals are few, and thus our understanding of mechanical and physical properties of animal teeth is limited. The objective of the present study was to evaluate the influence of force direction on fracture resistance and fracture pattern of canine teeth in an ex vivo dog cadaver model. Forty-five extracted canine teeth from laboratory beagle dogs were standardized by hard tissue volume and randomly distributed among 3 force direction groups. The teeth were secured within a universal testing machine and a load was applied at different directions based on testing group. The maximum force to fracture and the fracture pattern classification were recorded for each tooth. After correcting for hard tissue cross-sectional area in a multivariate analysis, no significant difference in the amount of force required for fracture was apparent between the different force direction groups. However, the influence of force direction on fracture pattern was significant. The results of this study may allow the clinician to educate clients on possible causal force directions in clinically fractured teeth and, thus, help prevent any contributing behavior in the future.
关于动物伸长犬齿的生物力学研究较少,因此我们对动物牙齿机械和物理特性的了解有限。本研究的目的是在离体犬尸体模型中评估力的方向对犬齿抗折性和骨折模式的影响。从实验用比格犬身上提取的45颗犬齿通过硬组织体积进行标准化,并随机分配到3个力方向组中。将牙齿固定在万能试验机内,并根据测试组在不同方向施加负荷。记录每颗牙齿的最大断裂力和骨折模式分类。在多变量分析中校正硬组织横截面积后,不同力方向组之间骨折所需力的大小没有明显差异。然而,力的方向对骨折模式的影响是显著的。本研究结果可能有助于临床医生向患者说明临床牙齿骨折中可能的致伤力方向,从而有助于预防未来的任何促成行为。