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Experimental and virtual testing of bone-implant systems equipped with the AO Fracture Monitor with regard to interfragmentary movement.
Wickert, Kerstin; Roland, Michael; Andres, Annchristin; Diebels, Stefan; Ganse, Bergita; Kerner, Dorothea; Frenzel, Felix; Tschernig, Thomas; Ernst, Manuela; Windolf, Markus; Müller, Max; Pohlemann, Tim; Orth, Marcel.
Afiliação
  • Wickert K; Applied Mechanics, Saarland University, Saarbrücken, Germany.
  • Roland M; Applied Mechanics, Saarland University, Saarbrücken, Germany.
  • Andres A; Applied Mechanics, Saarland University, Saarbrücken, Germany.
  • Diebels S; Applied Mechanics, Saarland University, Saarbrücken, Germany.
  • Ganse B; Werner Siemens Endowed Chair of Innovative Implant Development (Fracture Healing), Saarland University, Homburg, Germany.
  • Kerner D; Clinic of Diagnostic and Interventional Radiology, Saarland University Hospital, Homburg, Germany.
  • Frenzel F; Clinic of Diagnostic and Interventional Radiology, Saarland University Hospital, Homburg, Germany.
  • Tschernig T; Institute of Anatomy and Cell Biology, Saarland University, Homburg, Germany.
  • Ernst M; AO Research Institute Davos (ARI), Davos, Switzerland.
  • Windolf M; AO Research Institute Davos (ARI), Davos, Switzerland.
  • Müller M; Department of Trauma, Hand and Reconstruction Surgery, Saarland University Hospital, Homburg, Germany.
  • Pohlemann T; Department of Trauma, Hand and Reconstruction Surgery, Saarland University Hospital, Homburg, Germany.
  • Orth M; Department of Trauma, Hand and Reconstruction Surgery, Saarland University Hospital, Homburg, Germany.
Front Bioeng Biotechnol ; 12: 1370837, 2024.
Article em En | MEDLINE | ID: mdl-38524192
ABSTRACT

Introduction:

The management of fractured bones is a key domain within orthopedic trauma surgery, with the prevention of delayed healing and non-unions forming a core challenge. This study evaluates the efficacy of the AO Fracture Monitor in conjunction with biomechanical simulations to better understand the local mechanics of fracture gaps, which is crucial for comprehending mechanotransduction, a key factor in bone healing. Through a series of experiments and corresponding simulations, the study tests four hypotheses to determine the relationship between physical measurements and the predictive power of biomechanical models.

Methods:

Employing the AO Fracture Monitor and Digital Image Correlation techniques, the study demonstrates a significant correlation between the surface strain of implants and interfragmentary movements. This provides a foundation for utilizing one-dimensional AO Fracture Monitor measurements to predict three-dimensional fracture behavior, thereby linking mechanical loading with fracture gap dynamics. Moreover, the research establishes that finite element simulations of bone-implant systems can be effectively validated using experimental data, underpinning the accuracy of simulations in replicating physical behaviors. Results and

Discussion:

The findings endorse the combined use of monitoring technologies and simulations to infer the local mechanical conditions at the fracture site, offering a potential leap in personalized therapy for bone healing. Clinically, this approach can enhance treatment outcomes by refining the assessment precision in trauma trials, fostering the early detection of healing disturbances, and guiding improvements in future implant design. Ultimately, this study paves the way for more sophisticated patient monitoring and tailored interventions, promising to elevate the standard of care in orthopedic trauma surgery.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Front Bioeng Biotechnol Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Alemanha

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Front Bioeng Biotechnol Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Alemanha