Catanzarite Joshua, Alan Rodney, Baig Rafath, Forno Phil, Benson Lisa
Department of Bioengineering, Clemson University, Clemson, SC 29634, USA.
J Surg Orthop Adv. 2009 Winter;18(4):175-81.
This study compared the biomechanical performance of 4.5-mm limited-contact dynamic compression plates (DCPs) and 3.5-mm locking compression plates (LCPs) for the fixation of unstable humeral shaft fractures. Composite humeri were divided into two groups: 3.5-mm LCPs and 4.5-mm DCPs. Osteotomy gaps of 5 mm, simulating diaphyseal comminution, were created. Stiffness tests were performed in anterior-posterior (AP) bending, medial-lateral (ML) bending, torsion, and axial compression. Results showed that while construct stiffnesses in ML bending and torsional loading are significantly higher for the 4.5 DCP group (p < .05), no statistically significant differences were observed in AP bending or axial compression. Fatigue characteristics under cyclic AP bending conditions were also evaluated, although no failures occurred. Data from the literature suggest that stiffness results for the LCP constructs perhaps afford sufficient fixation strength capable of supporting the physiologic loads most commonly applied during postoperative rehabilitation. However, results indicate that the DCP construct is mechanically advantageous for stabilizing diaphyseal comminuted fractures.
本研究比较了4.5毫米有限接触动力加压钢板(DCP)和3.5毫米锁定加压钢板(LCP)在固定不稳定肱骨干骨折时的生物力学性能。将合成肱骨分为两组:3.5毫米LCP组和4.5毫米DCP组。制造出5毫米的截骨间隙,模拟骨干粉碎。在前-后(AP)弯曲、内-外(ML)弯曲、扭转和轴向压缩方面进行刚度测试。结果显示,虽然4.5 DCP组在ML弯曲和扭转载荷中的结构刚度显著更高(p < .05),但在AP弯曲或轴向压缩中未观察到统计学上的显著差异。还评估了在周期性AP弯曲条件下的疲劳特性,尽管未发生失效情况。文献数据表明,LCP结构的刚度结果或许能提供足够的固定强度,足以支撑术后康复期间最常施加的生理负荷。然而,结果表明DCP结构在稳定骨干粉碎性骨折方面具有力学优势。