Please use this identifier to cite or link to this item: doi:10.22028/D291-42699
Title: Finite element simulations of smart fracture plates capable of cyclic shortening and lengthening: which stroke for which fracture?
Author(s): Roland, Michael
Diebels, Stefan
Wickert, Kerstin
Pohlemann, Tim
Ganse, Bergita
Language: English
Title: Frontiers in Bioengineering and Biotechnology
Volume: 12
Publisher/Platform: Frontiers
Year of Publication: 2024
Free key words: fracture healing
bone regeneration
computer simulation
smart implant
active implant
biomechanics
osteosynthesis
digital health
DDC notations: 610 Medicine and health
Publikation type: Journal Article
Abstract: Introduction: Bone healing can be improved by axial micromovement, as has been shown in animals and human patients with external fixators. In the development of smart fracture plates, the ideal amount of stroke for different fracture types in the different healing stages is currently unknown. It was hypothesized that the resulting strain in the fracture gap of a simple tibial shaft fracture does not vary with the amount of axial stroke in the plate, the fracture gap size, and the fracture angle. Methods: With finite element simulations based on body donation computed tomography data, the second invariant of the deviatoric strain tensor (J2), strain energy density, hydrostatic strain, octahedral shear strain, and percentage of the fracture gap in the “perfect healing window” were computed for different gap sizes (1–3 mm), angles (5°–60°), and plate stroke levels (0.05–0.60 mm) in three healing stages. Multiple linear regression analyses were performed. Results: Findings showed that an active fracture plate should deliver an axial stroke in the range of 0.10–0.45 mm. Different optimal stroke values were found for each healing phase, namely, 0.10–0.25 mm for the first, 0.10 mm for the second, and 0.35–0.45 mm for the third healing phase, depending on the fracture gap size and less on the fracture angle. J2, hydrostatic strain, octahedral shear strain and the strain energy density correlated with the fracture gap size and angle (all p < 0.001). The influence of the fracture gap size and angle on the variability (adjusted R2 ) in several outcome measures in the fracture gap was shown to vary throughout healing. The contribution to the variability of the percentage of the fracture gap in the perfect healing window was greatest during the second healing phase. For J2, strain energy density, hydrostatic strain, and octahedral shear strain, the fracture gap size showed the greatest contribution in the third fracture healing phase, while the influence of fracture angle was independent of the healing phase.
DOI of the first publication: 10.3389/fbioe.2024.1420047
URL of the first publication: https://doi.org/10.3389/fbioe.2024.1420047
Link to this record: urn:nbn:de:bsz:291--ds-426990
hdl:20.500.11880/38300
http://dx.doi.org/10.22028/D291-42699
ISSN: 2296-4185
Date of registration: 22-Aug-2024
Faculty: M - Medizinische Fakultät
NT - Naturwissenschaftlich- Technische Fakultät
Department: M - Chirurgie
NT - Materialwissenschaft und Werkstofftechnik
Professorship: M - Prof. Dr. med. Bergita Ganse
M - Prof. Dr. Tim Pohlemann
NT - Prof. Dr. Stefan Diebels
Collections:SciDok - Der Wissenschaftsserver der Universität des Saarlandes

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