Three-Dimensional Versus Radiographic Measurements for Analyzing Extra-Articular Distal Radius Malunion.


Journal

The Journal of hand surgery
ISSN: 1531-6564
Titre abrégé: J Hand Surg Am
Pays: United States
ID NLM: 7609631

Informations de publication

Date de publication:
Oct 2020
Historique:
received: 17 05 2019
revised: 04 02 2020
accepted: 09 03 2020
pubmed: 25 4 2020
medline: 29 6 2021
entrez: 25 4 2020
Statut: ppublish

Résumé

To compare the accuracy of evaluating deformity in distal radius malunions using plain radiographic measurements compared with a 3-dimensional method involving 3-dimensional computer bone models. Consecutive patients who had an extra-articular distal radius malunion were included. Standard radiographs and computed tomography scans of both wrists were performed. Palmar tilt, radial tilt, and ulnar variance were measured on radiographs. The computed tomography scan data were sent to a workstation and 3-dimensional bone surface models of the radius were created. The 3-dimensional palmar tilt, 3-dimensional radial tilt, 3-dimensional ulnar variance, and axial rotational deformity were calculated. Thirteen patients, mean age 40 years (range, 22-57 years) were included. The 3 3-dimensional values were positively correlated with their corresponding radiographic values. Nevertheless, the 3-dimesional palmar tilt and 3-dimensional radial tilt values were slightly smaller than the radiographic palmar tilt and radial tilt. The quantitative difference between the 3-dimensional method and plain radiographs was on average 2° for the dorsal deformity group and 3° for the palmar deformity group. The 3-dimensional ulnar variance was significantly higher than the radiographic ulnar variance by an average of +1.3 mm for malunions with dorsal tilt and +0.6 mm for malunions with palmar tilt. The 3-dimensional method allowed us to measure the extent of the axial rotational deformity, which was 9° on average (range, 2° to 21°). Despite small differences, measurements made on both plain radiographs and 3-dimensional computer bone models are accurate for evaluating the deformity in extra-articular distal radius malunions. Our 3-dimensional method seems to provide a more accurate measurement of ulnar variance, particularly for dorsally angulated cases, and is helpful for measuring rotational malalignment. In this study, we found that either a 3-dimensional computer bone model or plain radiographs can be used as a benchmark to evaluate the deformity of extra-articular distal radius malunion. The 3-dimensional method can also be used to define axial rotational deformity.

Identifiants

pubmed: 32327340
pii: S0363-5023(20)30146-5
doi: 10.1016/j.jhsa.2020.03.009
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

984.e1-984.e7

Informations de copyright

Copyright © 2020 American Society for Surgery of the Hand. Published by Elsevier Inc. All rights reserved.

Auteurs

Lionel Athlani (L)

Department of Hand Surgery, Plastic and Reconstructive Surgery, Centre Chirurgical Emile Gallé, Nancy, France. Electronic address: lionel.athlani@gmail.com.

Audrey Chenel (A)

Newclip Technics, PSI Radius, Haute-Goulaine, France.

Philippe Berton (P)

Newclip Technics, PSI Radius, Haute-Goulaine, France.

Romain Detammaecker (R)

Department of Hand Surgery, Plastic and Reconstructive Surgery, Centre Chirurgical Emile Gallé, Nancy, France.

Gilles Dautel (G)

Department of Hand Surgery, Plastic and Reconstructive Surgery, Centre Chirurgical Emile Gallé, Nancy, France.

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