Windolf Markus, Leitner Michael, Schwieger Karsten, Pearce Simon G, Zeiter Stephan, Schneider Erich, Johnson Kenneth A
Department of Contract Research and Support, AO Research Institute, Davos, Switzerland.
Vet Surg. 2008 Jun;37(4):366-73. doi: 10.1111/j.1532-950X.2008.00390.x.
To compare tibial plateau rotation after tibial plateau leveling osteotomy with the radiographically planned rotation and to determine the effect of translations and rotations of the tibial plateau fragment on the biomechanical stability of the construct under cyclic loading.
Experimental biomechanical study.
Cadaveric canine pelvic limbs (n=10).
Titanium pins were inserted into the tibial plateau and the proximal metaphysis to track the fragment movements by means of computed tomography (CT) imaging. CT scans were performed (1) before osteotomy, (2) after osteotomy and tibial plateau rotation, and (3) after stabilization with plate and screws. The bones were then cyclically loaded in axial compression.
The radiographically planned tibial plateau rotation correlated significantly with the achieved rotation (r=0.73, P=.016), although deviations of up to 4.7 degrees were observed. A significant positive correlation between the amount of rotation about the sawing axis and the plastic deformation of the construct after 30,000 test cycles could be found (r=0.81, P=.005).
Considerable deviation occurred between planned and achieved rotation of the tibial plateau fragment. Lower degrees of rotation were beneficial for biomechanical stability.
Dogs with larger tibial plateau angles may be at a relatively higher risk for fixation failure, but further studies are needed to establish a safe margin of tibial plateau rotation.
比较胫骨平台平整截骨术后胫骨平台的旋转角度与影像学规划的旋转角度,并确定胫骨平台骨折块的平移和旋转对循环加载下结构生物力学稳定性的影响。
实验性生物力学研究。
犬尸体骨盆肢体(n = 10)。
将钛针插入胫骨平台和近端干骺端,通过计算机断层扫描(CT)成像追踪骨折块的运动。在(1)截骨术前、(2)截骨及胫骨平台旋转后、(3)钢板螺钉固定后进行CT扫描。然后对骨骼进行轴向压缩循环加载。
影像学规划的胫骨平台旋转角度与实际旋转角度显著相关(r = 0.73,P = 0.016),尽管观察到高达4.7度的偏差。在30000次测试循环后,围绕锯切轴的旋转量与结构的塑性变形之间存在显著正相关(r = 0.81,P = 0.005)。
胫骨平台骨折块的规划旋转角度与实际旋转角度之间存在相当大的偏差。较小的旋转角度有利于生物力学稳定性。
胫骨平台角度较大的犬可能发生内固定失败的风险相对较高,但需要进一步研究以确定胫骨平台旋转的安全范围。