Stability of small pegs for cementless implant fixation.

J Orthop Res

Biomechanics Group, Department of Mechanical Engineering, Imperial College London, Exhibition Road, SW7 2AZ London, United Kingdom.

Published: December 2017

AI Article Synopsis

  • Many glenoid implants use large central features to prevent damage to the glenoid’s outer areas, but these can lead to insufficient bone for future prosthesis revisions.
  • This study tested different small peg configurations made from UHMWPE to find better options that require less bone removal but still provide strong anchoring in denser bone.
  • The results indicated that designs with lower stiffness fins performed the best, needing less force to insert while ensuring solid stabilization, which is essential for the longevity of the implants.

Article Abstract

Most glenoid implants rely on large centrally located fixation features to avoid perforation of the glenoid vault in its peripheral regions. Upon revision of such components there may not be enough bone left for the reinsertion of an anatomical prosthesis. Multiple press-fit small pegs would allow for less bone resection and strong anchoring in the stiffer and denser peripheral subchondral bone. This study assessed the fixation characteristics, measured as the push-in (P ) and pull-out (P ) forces, and spring-back, measured as the elastic displacement immediately after insertion, for five different small press-fitted peg configurations manufactured out of UHMWPE cylinders (5 mm diameter and length). A total of 16 specimens for each configuration were tested in two types of solid bone substitute: Hard (40 PCF, 0.64 g/cm , worst-case scenario of P ) and soft (15 PCF, 0.24 g/cm , worst-case scenario of spring-back and P ). Two different diametric interference-fits were studied. Geometries with lower stiffness fins (large length to width aspect ratio) were the best performing designs in terms of primary fixation stability. They required the lowest force to fully seat, meaning they are less damaging to the bone during implantation, while providing the highest P /P ratio, indicating that when implanted they provide the strongest anchoring for the glenoid component. It is highlighted that drilling of chamfered holes could minimize spring-back displacements. These findings are relevant for the design of implants press-fitted pegs because primary fixation has been shown to be an important factor in achieving osseointegration and longevity of secondary fixation. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 35:2765-2772, 2017.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5763372PMC
http://dx.doi.org/10.1002/jor.23572DOI Listing

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