Tsai Stanley, Fitzpatrick Daniel C, Madey Steven M, Bottlang Michael
Biomechanics Laboratory, Legacy Research & Technology Center, Portland, 97232, Oregon.
Slocum Center for Orthopedics and Sports Medicine, Eugene, 97408, Oregon.
J Orthop Res. 2015 Aug;33(8):1218-25. doi: 10.1002/jor.22881. Epub 2015 May 21.
Axial dynamization of an osteosynthesis construct can promote fracture healing. This biomechanical study evaluated a novel dynamic locking plate that derives symmetric axial dynamization by elastic suspension of locking holes within the plate. Standard locked and dynamic plating constructs were tested in a diaphyseal bridge-plating model of the femoral diaphysis to determine the amount and symmetry of interfragmentary motion under axial loading, and to assess construct stiffness under axial loading, torsion, and bending. Subsequently, constructs were loaded until failure to determine construct strength and failure modes. Finally, strength tests were repeated in osteoporotic bone surrogates. One body-weight axial loading of standard locked constructs produced asymmetric interfragmentary motion that was over three times smaller at the near cortex (0.1 ± 0.01 mm) than at the far cortex (0.32 ± 0.02 mm). Compared to standard locked constructs, dynamic plating constructs enhanced motion by 0.32 mm at the near cortex and by 0.33 mm at the far cortex and yielded a 77% lower axial stiffness (p < 0.001). Dynamic plating constructs were at least as strong as standard locked constructs under all test conditions. In conclusion, dynamic locking plates symmetrically enhance interfragmentary motion, deliver controlled axial dynamization, and are at least comparable in strength to standard locked constructs. © 2015 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 33:1218-1225, 2015.
骨合成结构的轴向动力化可促进骨折愈合。本生物力学研究评估了一种新型动力锁定钢板,该钢板通过弹性悬吊钢板内的锁定孔实现对称轴向动力化。在股骨干的骨干桥接钢板模型中测试标准锁定和动力钢板结构,以确定轴向加载下骨折块间运动的量和对称性,并评估轴向加载、扭转和弯曲下结构的刚度。随后,对结构进行加载直至破坏,以确定结构强度和破坏模式。最后,在骨质疏松骨替代物中重复进行强度测试。标准锁定结构的一次体重轴向加载产生不对称骨折块间运动,近皮质处(0.1±0.01mm)的运动比远皮质处(0.32±0.02mm)小三倍多。与标准锁定结构相比,动力钢板结构使近皮质处运动增加0.32mm,远皮质处运动增加0.33mm,轴向刚度降低77%(p<0.001)。在所有测试条件下,动力钢板结构至少与标准锁定结构一样坚固。总之,动力锁定钢板对称地增强骨折块间运动,提供可控的轴向动力化,并且强度至少与标准锁定结构相当。©2015骨科研究协会。由威利期刊公司出版。《矫形外科学研究》33:1218 - 1225,2015年。