Scolaro John A, Hsu Jason E, Svach David J, Mehta Samir
University of California, Irvine, Department of Orthopaedic Surgery, 101 The City Drive South, Pavilion III, Building 29A, 2nd Floor, Orange, CA 92868, United States.
University of Washington, Department of Orthopaedics and Sports Medicine, 4245 Roosevelt Way N.E., Seattle, WA 98105, United States.
Injury. 2014 Dec;45(12):2040-4. doi: 10.1016/j.injury.2014.08.036. Epub 2014 Sep 10.
Operative fixation of extra-articular distal humerus using a single posterolateral column plate has been described but the biomechanical properties or limits of this technique is undefined. The purpose of this study was to evaluate the mechanical properties of distal humerus fracture fixation using three standard fixation constructs. Two equal groups were created from forty sawbones humeri. Osteotomies were created at 80mm or 50mm from the tip of the trochlea. In the proximal osteotomy group, sawbones were fixed with an 8-hole 3.5mm LCP or with a 6-hole posterolateral plate. In the distal group, sawbones were fixed with 9-hole medial and lateral 3.5mm distal humerus plates and ten sawbones were fixed with a 6-hole posterolateral plate. Biomechanical testing was performed using a servohydraulic testing machine. Testing in extension as well as internal and external rotation was performed. Destructive testing was also performed with failure being defined as hardware pullout, sawbone failure or cortical contact at the osteotomy. In the proximal osteotomy group, the average bending stiffness and torsional stiffness was significantly greater with the posterolateral plate than with the 3.5mm LCP. In the distal osteotomy group, the average bending stiffness and torsional stiffness was significantly greater with the posterolateral plate than the 3.5mm LCP. In extension testing, the yield strength was significantly greater with the posterolateral plate in the proximal osteotomy specimens, and the dual plating construct in the distal osteotomy specimens. The yield strength of specimens in axial torsion was significantly greater with the posterolateral plate in the proximal osteotomy specimens, and the dual plating construct in the distal osteotomy specimens. Limited biomechanical data to support the use of a pre-contoured posterolateral distal humerus LCP for fixation of extra-articular distal humerus exists. We have found that this implant provided significantly greater bending stiffness, torsional stiffness, and yield strength than a single 3.5mm LCP plate for osteotomies created 80mm from the trochlea. At the more distal osteotomy, dual plating was biomechanically superior. Our results suggest that single posterolateral column fixation of extra-articular humerus fractures is appropriate for more proximal fractures but that dual plate fixation is superior for more distal fractures.
已有人描述了使用单块后外侧柱钢板对肱骨远端关节外骨折进行手术固定,但该技术的生物力学特性或局限性尚不明确。本研究的目的是评估使用三种标准固定结构对肱骨远端骨折进行固定的力学性能。从40具肱骨标本制作了两组相等的样本。在距滑车尖端80mm或50mm处制造截骨。在近端截骨组中,肱骨标本用8孔3.5mm锁定加压钢板(LCP)或6孔后外侧钢板固定。在远端组中,肱骨标本用9孔3.5mm肱骨远端内外侧钢板固定,另有10具肱骨标本用6孔后外侧钢板固定。使用伺服液压试验机进行生物力学测试。进行了伸展以及内旋和外旋测试。还进行了破坏性测试,将失败定义为内植物拔出、标本破坏或截骨处皮质接触。在近端截骨组中,后外侧钢板的平均弯曲刚度和扭转刚度显著大于3.5mm LCP。在远端截骨组中,后外侧钢板的平均弯曲刚度和扭转刚度显著大于3.5mm LCP。在伸展测试中,近端截骨标本中后外侧钢板以及远端截骨标本中双钢板结构的屈服强度显著更高。近端截骨标本中后外侧钢板以及远端截骨标本中双钢板结构在轴向扭转时标本的屈服强度显著更高。支持使用预塑形后外侧肱骨远端LCP固定肱骨远端关节外骨折的生物力学数据有限。我们发现,对于在距滑车80mm处制造的截骨,该植入物提供的弯曲刚度明显更高,扭转刚度和屈服强度也明显高于单块3.5mm LCP钢板。在更靠远端的截骨处,双钢板固定在生物力学上更具优势。我们的结果表明,肱骨远端关节外骨折的单后外侧柱固定适用于更靠近近端的骨折,但双钢板固定对于更靠远端的骨折更具优势。