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Biomechanical validation of a tibial critical-size defect model in minipigs.
Ribeiro, Marx; Grotheer, Vera Cora; Nicolini, Luis Fernando; Latz, David; Pishnamaz, Miguel; Greven, Johannes; Taday, Roman; Wergen, Niklas Markus; Hildebrand, Frank; Windolf, Joachim; Jungbluth, Pascal.
Afiliação
  • Ribeiro M; Department of Orthopedics, Trauma and Reconstructive Surgery University Hospital RWTH Aachen, Pauwelstr. 30, 52074 Aachen, Germany; Department of Trauma and Reconstructive Surgery University Hospital Halle, Ernst-Grube-Straße 40, 06120 Halle (Saale), Germany. Electronic address: marx.ribeiro@rwth-aa
  • Grotheer VC; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: vera.grotheer@med.uni-duesseldorf.de.
  • Nicolini LF; Department of Mechanical Engineering, Federal University of Santa Maria UFSM, Av. Roraima n° 1000 Cidade Universitária Bairro - Camobi, 97105 - 900 Santa Maria, Brazil. Electronic address: nicolini.luis@ufsm.br.
  • Latz D; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: David.Latz@med.uni-duesseldorf.de.
  • Pishnamaz M; Department of Orthopedics, Trauma and Reconstructive Surgery University Hospital RWTH Aachen, Pauwelstr. 30, 52074 Aachen, Germany. Electronic address: mpishnamaz@ukaachen.de.
  • Greven J; Department of Thorax Surgery, University Hospital RWTH Aachen, Pauwelstr. 30, 52074 Aachen, Germany. Electronic address: jgreven@ukaachen.de.
  • Taday R; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: Roman.Taday@med.uni-duesseldorf.de.
  • Wergen NM; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: niklasmarkus.wergen@med.uni-duesseldorf.de.
  • Hildebrand F; Department of Orthopedics, Trauma and Reconstructive Surgery University Hospital RWTH Aachen, Pauwelstr. 30, 52074 Aachen, Germany. Electronic address: fhildebrand@ukaachen.de.
  • Windolf J; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: Joachim.Windolf@med.uni-duesseldorf.de.
  • Jungbluth P; Department of Orthopedics and Trauma Surgery, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University, Moorenstr. 5, 40225 Düsseldorf, Germany. Electronic address: Pascal.Jungbluth@med.uni-duesseldorf.de.
Clin Biomech (Bristol, Avon) ; 120: 106336, 2024 Sep 07.
Article em En | MEDLINE | ID: mdl-39276502
ABSTRACT

BACKGROUND:

Autologous cancellous bone grafting still represents the gold standard for the therapy of non-healing bone defects. However, donor site morbidity and the restricted availability of autologous bone grafts have initiated scientists to look for promising alternatives to heal even large defects. The present study aimed to evaluate the biomechanical potential and failure properties of a previously developed metaphyseal critical-size defect model of the proximal tibia in minipigs for future comparisons of bone substitute materials.

METHODS:

Fresh-frozen minipig tibiae were divided into two groups, with half undergoing the creation of critical-size defects. Specimens were subjected to biomechanical fatigue tests and load-to-failure tests. CT scans post-test verified bone damage. Statistical analysis compared the properties of defected and intact specimens.

FINDINGS:

In this model, it was demonstrated that under uniaxial cyclic compression within the loading axis, the intact tibiae specimens (8708 ± 202 N) provided a significant (p = 0.014) higher compressive force to failure than the tibiae with the defect (6566 ± 1653 N).

INTERPRETATION:

Thus, the used minipig model is suitable for comparing bone substitute materials regarding their biomechanical forces and bone regeneration capacity.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article