Literature DB >> 28648329

Biomechanical Properties of 3-Dimensional Printed Volar Locking Distal Radius Plate: Comparison With Conventional Volar Locking Plate.

Sung-Jae Kim1, Young-Hoon Jo2, Wan-Sun Choi3, Chang-Hun Lee4, Bong-Gun Lee2, Joo-Hak Kim5, Kwang-Hyun Lee2.   

Abstract

PURPOSE: This study evaluated the biomechanical properties of a new volar locking plate made by 3-dimensional printing using titanium alloy powder and 2 conventional volar locking plates under static and dynamic loading conditions that were designed to replicate those seen during fracture healing and early postoperative rehabilitation.
METHODS: For all plate designs, 12 fourth-generation synthetic composite radii were fitted with volar locking plates according to the manufacturers' technique after segmental osteotomy. Each specimen was first preloaded 10 N and then was loaded to 100 N, 200 N, and 300 N in phases at a rate of 2 N/s. Each construct was then dynamically loaded for 2,000 cycles of fatigue loading in each phase for a total 10,000 cycles. Finally, the constructs were loaded to a failure at a rate of 5 mm/min.
RESULTS: All 3 plates showed increasing stiffness at higher loads. The 3-dimensional printed volar locking plate showed significantly higher stiffness at all dynamic loading tests compared with the 2 conventional volar locking plates. The 3-dimensional printed volar locking plate had the highest yield strength, which was significantly higher than those of 2 conventional volar locking plates.
CONCLUSIONS: A 3-dimensional printed volar locking plate has similar stiffness to conventional plates in an experimental model of a severely comminuted distal radius fracture in which the anterior and posterior metaphyseal cortex are involved. CLINICAL RELEVANCE: These results support the potential clinical utility of 3-dimensional printed volar locking plates in which design can be modified according the fracture configuration and the anatomy of the radius.
Copyright © 2017 American Society for Surgery of the Hand. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  3-dimensional printing; distal radial fracture; volar locking plate

Mesh:

Substances:

Year:  2017        PMID: 28648329     DOI: 10.1016/j.jhsa.2017.05.009

Source DB:  PubMed          Journal:  J Hand Surg Am        ISSN: 0363-5023            Impact factor:   2.230


  4 in total

1.  Impact of Design on Force between Flexor Tendons and Distal Radius Volar Plates.

Authors:  Katharine M Hinchcliff; Ido Volk; Xenia Ivanova; Sandra Taylor; Robert M Szabo
Journal:  J Wrist Surg       Date:  2019-03-25

2.  In-hospital production of 3D-printed casts for non-displaced wrist and hand fractures.

Authors:  Shai Factor; Franck Atlan; Tamir Pritsch; Netta Rumack; Eran Golden; Solomon Dadia
Journal:  SICOT J       Date:  2022-05-24

3.  Overview of In-Hospital 3D Printing and Practical Applications in Hand Surgery.

Authors:  Marco Keller; Alissa Guebeli; Florian Thieringer; Philipp Honigmann
Journal:  Biomed Res Int       Date:  2021-03-26       Impact factor: 3.411

Review 4.  Anatomical Engineering and 3D Printing for Surgery and Medical Devices: International Review and Future Exponential Innovations.

Authors:  José Cornejo; Jorge A Cornejo-Aguilar; Mariela Vargas; Carlos G Helguero; Rafhael Milanezi de Andrade; Sebastian Torres-Montoya; Javier Asensio-Salazar; Alvaro Rivero Calle; Jaime Martínez Santos; Aaron Damon; Alfredo Quiñones-Hinojosa; Miguel D Quintero-Consuegra; Juan Pablo Umaña; Sebastian Gallo-Bernal; Manolo Briceño; Paolo Tripodi; Raul Sebastian; Paul Perales-Villarroel; Gabriel De la Cruz-Ku; Travis Mckenzie; Victor Sebastian Arruarana; Jiakai Ji; Laura Zuluaga; Daniela A Haehn; Albit Paoli; Jordan C Villa; Roxana Martinez; Cristians Gonzalez; Rafael J Grossmann; Gabriel Escalona; Ilaria Cinelli; Thais Russomano
Journal:  Biomed Res Int       Date:  2022-03-24       Impact factor: 3.411

  4 in total

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