Literature DB >> 19318872

Stiffness modulation of locking plate constructs using near cortical slotted holes: a preliminary study.

Michael J Gardner1, Sean E Nork, Phillipe Huber, James C Krieg.   

Abstract

OBJECTIVES: Axial stiffness is a critical mechanical parameter in fracture plating. Standard locked plates allow minimal opportunities for stiffness alteration, and current methods are arbitrary and may lead to stiffness mismatch between the implant and bone. Milling the near cortex into a slot allows for an increase in translation of the screw shaft at the near cortex. The purpose of this proof of concept study was to determine the effects of slots on stiffness and their ability to maintain fixation of locking plates under cyclic loading.
METHODS: Using segments of fourth-generation synthetic diaphyseal bone, a simulated fracture with a gap was created and locked plates were applied with 4 bicortical locked screws in each fragment. On one fragment, the 4 near cortex holes were sequentially milled to 5 x 6-mm slots. Axial and torsional stiffnesses were determined for constructs with 0 through 4 slots. Specimens with 4 slots then underwent axial cyclic loading to determine the change in stiffness and loss of fixation. Extraction torque was measured for all screws to assess for screw loosening with cycling.
RESULTS: In constructs with 4 slots, axial stiffness decreased by 73% (P < 0.05) relative to the 0-slot constructs. Torsional stiffness of the 3- and 4-slot specimens decreased by 20% (SD, 13%; P < 0.05) and 17% (SD, 13%; P < 0.05), respectively, compared with the 0-slot specimens. With cyclic loading, no failures occurred in any specimen. No change in stiffness had occurred by the end of cycling (106% of initial stiffness; SD, 4%; P = 0.96). No screw loosening occurred during cyclic loading.
CONCLUSIONS: Purposeful stiffness modulation in fracture fixation is critical to facilitate uneventful fracture healing. Converting near cortical holes to slots allowed selective axial stiffness adjustment without sacrificing fixation stability under cyclic loading. With further refinement, this simple modification of standard implant application may allow the surgeon to decrease the modulus mismatch between plating constructs and bone to decrease the risk of fixation failure.

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Year:  2009        PMID: 19318872     DOI: 10.1097/BOT.0b013e31819df775

Source DB:  PubMed          Journal:  J Orthop Trauma        ISSN: 0890-5339            Impact factor:   2.512


  16 in total

1.  Effects of construct stiffness on healing of fractures stabilized with locking plates.

Authors:  Michael Bottlang; Josef Doornink; Trevor J Lujan; Daniel C Fitzpatrick; J Lawrence Marsh; Peter Augat; Brigitte von Rechenberg; Maren Lesser; Steven M Madey
Journal:  J Bone Joint Surg Am       Date:  2010-12       Impact factor: 5.284

2.  Dynamic locked plating for fixation of distal femur fractures using near- cortical over-drilling: Preliminary results of a prospective observational study.

Authors:  Sherif Galal
Journal:  J Clin Orthop Trauma       Date:  2017-07-15

3.  The dynamic locking screw (DLS) can increase interfragmentary motion on the near cortex of locked plating constructs by reducing the axial stiffness.

Authors:  Stefan Döbele; Carsten Horn; Stefan Eichhorn; Arne Buchholtz; Andreas Lenich; Rainer Burgkart; Andreas K Nüssler; Martin Lucke; Daniel Andermatt; Rudolf Koch; Ulrich Stöckle
Journal:  Langenbecks Arch Surg       Date:  2010-04-01       Impact factor: 3.445

4.  Interfragmentary lag screw and locking plate combination in simple distal femoral fractures: A finite element analysis.

Authors:  Jun Zhang; Yan Wei; Guoding Li; Jian Wang; Youjia Xu
Journal:  Acta Orthop Traumatol Turc       Date:  2021-01       Impact factor: 1.511

5.  Clinical and radiologic outcomes associated with the use of dynamic locking screws (DLS) in distal tibia fractures.

Authors:  Y P Acklin; U Stöckle; C Sommer
Journal:  Eur J Trauma Emerg Surg       Date:  2015-06-11       Impact factor: 3.693

6.  Dynamic locking screw improves fixation strength in osteoporotic bone: an in vitro study on an artificial bone model.

Authors:  Tim Pohlemann; Boyko Gueorguiev; Yash Agarwal; Dieter Wahl; Christoph Sprecher; Karsten Schwieger; Mark Lenz
Journal:  Int Orthop       Date:  2015-01-28       Impact factor: 3.075

Review 7.  Internal fixation of osteoporotic fractures.

Authors:  David L Rothberg; Mark A Lee
Journal:  Curr Osteoporos Rep       Date:  2015-02       Impact factor: 5.096

8.  Plating of metacarpal fractures with locked or nonlocked screws, a biomechanical study: how many cortices are really necessary?

Authors:  Cameron Barr; Anthony W Behn; Jeffrey Yao
Journal:  Hand (N Y)       Date:  2013-12

Review 9.  Clinical Management of Osteoporotic Fractures.

Authors:  Adam Z Khan; Richard D Rames; Anna N Miller
Journal:  Curr Osteoporos Rep       Date:  2018-06       Impact factor: 5.096

10.  Temporal Changes in Reverse Torque of Locking-Head Screws Used in the Locking Plate in Segmental Tibial Defect in Goat Model.

Authors:  Remigiusz M Grzeskowiak; Rebecca E Rifkin; Elizabeth G Croy; Richard C Steiner; Reza Seddighi; Pierre-Yves Mulon; Henry S Adair; David E Anderson
Journal:  Front Surg       Date:  2021-04-27
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