What is the underlying mechanism for the failure mode observed in the proximal femoral locking compression plate? A biomechanical study

Injury. 2015 Aug;46(8):1483-90. doi: 10.1016/j.injury.2015.05.034. Epub 2015 May 21.

Abstract

Purpose: Recently, several cases of clinical failure have been reported for the Proximal Femoral Locking Compression Plate (PF-LCP). The current study was designed to explore biomechanically the underlying mechanism and to determine whether the observed failure was due to technical error on insertion or to implant design.

Methods: A foam block model simulating an unstable intertrochanteric fracture was created for 3 study groups with 6 specimens each. Group C was correctly instrumented according to the manufacturer's guidelines. In Group P and Group A, the first or second proximal screw was placed with a posterior or anterior off-axis orientation by 2° measured in the transversal plane, respectively. Each construct was cyclically tested until failure using a test setup and protocol simulating complex axial and torsional loading. Radiographs were taken prior to and after the tests. Force, number of cycles to failure and failure mode were compared.

Results: A screw deviation of 2° from the nominal axis led to significantly earlier construct failure in Group P and Group A in comparison to Group C. The failure mode was characterised by loosening of the off-axis screw due to disengagement with the plate, resulting in loss of construct stiffness and varus collapse of the fracture.

Conclusions: In our biomechanical test setup, the clinical failure modes observed with the PF-LCP were reproducible. A screw deviation of 2° from the nominal axis consistently led to the failure. This highlights how crucial is the accurate placement of locking screws in the proximal femur.

Keywords: Angular stable plate fixation; Biomechanical study; Failure mode; Proximal femoral locking compression plate; Screw loosening; Unstable trochanteric fracture.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biomechanical Phenomena
  • Bone Plates*
  • Bone Screws*
  • Equipment Failure Analysis
  • Femoral Fractures / surgery*
  • Fracture Fixation, Internal / instrumentation*
  • Fracture Fixation, Intramedullary / instrumentation*
  • Humans
  • Prosthesis Design