Cargando…

Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model

Antibiotic carrier particles of variable size might influence mechanic properties within impacted thermodisinfected and native cancellous bone different. Herafill®G containing calciumsulfate and calciumcarbonate provides high local concentrations of gentamicin being important for revision surgery in...

Descripción completa

Detalles Bibliográficos
Autores principales: Fölsch, C., Sahm, P., Ulloa, C. A. Fonseca, Krombach, G. A., Kampschulte, M., Rickert, M., Pruss, A., Jahnke, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8558171/
https://www.ncbi.nlm.nih.gov/pubmed/33893901
http://dx.doi.org/10.1007/s10561-021-09924-w
_version_ 1784592496576167936
author Fölsch, C.
Sahm, P.
Ulloa, C. A. Fonseca
Krombach, G. A.
Kampschulte, M.
Rickert, M.
Pruss, A.
Jahnke, A.
author_facet Fölsch, C.
Sahm, P.
Ulloa, C. A. Fonseca
Krombach, G. A.
Kampschulte, M.
Rickert, M.
Pruss, A.
Jahnke, A.
author_sort Fölsch, C.
collection PubMed
description Antibiotic carrier particles of variable size might influence mechanic properties within impacted thermodisinfected and native cancellous bone different. Herafill®G containing calciumsulfate and calciumcarbonate provides high local concentrations of gentamicin being important for revision surgery in infected joint replacements. Native and thermodisinfected cancellous bone derived from 6 to 7 months old piglets was used for in vitro impaction bone grafting and supplemented each with Herafill®G granules of two different sizes. Micromovement of implants related to shear force was measured in 29 specimens distributed in 6 groups. Thermodisinfected cancellous bone revealed a significant higher shear force resistance than native bone with a mean difference of 423.8 mdeg/Nm (p < 0.001) ranging within 95% confidence interval from 181.5 to 666.0 mdeg/Nm. Adding small granules to thermodisinfected bone did not reduce shear force resistance significantly since adding large granules to native bone improved it by 344.0 mdeg/Nm (p < 0.003). Shear force resistance was found higher at the distal region of the implant compared to a proximal point of measurement throughout all specimens. Less impaction impulses were necessary for thermodisinfected bone. Thermodisinfected cancellous bone might achieve a higher degree of impaction compared with native bone resulting in increased resistance against shear force since impaction was found increased distally. Supplementation of thermodisinfected bone with small granules of Herafill®G might be considered for application of local antibiotics. Large granules appeared more beneficial for supplementation of native bone. Heterogeneity of bone graft and technical aspects of the impaction procedure have to be considered regarding the reproducibility of femoral impaction bone grafting.
format Online
Article
Text
id pubmed-8558171
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Springer Netherlands
record_format MEDLINE/PubMed
spelling pubmed-85581712021-11-15 Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model Fölsch, C. Sahm, P. Ulloa, C. A. Fonseca Krombach, G. A. Kampschulte, M. Rickert, M. Pruss, A. Jahnke, A. Cell Tissue Bank Article Antibiotic carrier particles of variable size might influence mechanic properties within impacted thermodisinfected and native cancellous bone different. Herafill®G containing calciumsulfate and calciumcarbonate provides high local concentrations of gentamicin being important for revision surgery in infected joint replacements. Native and thermodisinfected cancellous bone derived from 6 to 7 months old piglets was used for in vitro impaction bone grafting and supplemented each with Herafill®G granules of two different sizes. Micromovement of implants related to shear force was measured in 29 specimens distributed in 6 groups. Thermodisinfected cancellous bone revealed a significant higher shear force resistance than native bone with a mean difference of 423.8 mdeg/Nm (p < 0.001) ranging within 95% confidence interval from 181.5 to 666.0 mdeg/Nm. Adding small granules to thermodisinfected bone did not reduce shear force resistance significantly since adding large granules to native bone improved it by 344.0 mdeg/Nm (p < 0.003). Shear force resistance was found higher at the distal region of the implant compared to a proximal point of measurement throughout all specimens. Less impaction impulses were necessary for thermodisinfected bone. Thermodisinfected cancellous bone might achieve a higher degree of impaction compared with native bone resulting in increased resistance against shear force since impaction was found increased distally. Supplementation of thermodisinfected bone with small granules of Herafill®G might be considered for application of local antibiotics. Large granules appeared more beneficial for supplementation of native bone. Heterogeneity of bone graft and technical aspects of the impaction procedure have to be considered regarding the reproducibility of femoral impaction bone grafting. Springer Netherlands 2021-04-24 2021 /pmc/articles/PMC8558171/ /pubmed/33893901 http://dx.doi.org/10.1007/s10561-021-09924-w Text en © The Author(s) 2021 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Fölsch, C.
Sahm, P.
Ulloa, C. A. Fonseca
Krombach, G. A.
Kampschulte, M.
Rickert, M.
Pruss, A.
Jahnke, A.
Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title_full Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title_fullStr Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title_full_unstemmed Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title_short Effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
title_sort effect of synthetic bone replacement material of different size on shear stress resistance within impacted native and thermodisinfected cancellous bone: an in vitro femoral impaction bone grafting model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8558171/
https://www.ncbi.nlm.nih.gov/pubmed/33893901
http://dx.doi.org/10.1007/s10561-021-09924-w
work_keys_str_mv AT folschc effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT sahmp effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT ulloacafonseca effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT krombachga effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT kampschultem effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT rickertm effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT prussa effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel
AT jahnkea effectofsyntheticbonereplacementmaterialofdifferentsizeonshearstressresistancewithinimpactednativeandthermodisinfectedcancellousboneaninvitrofemoralimpactionbonegraftingmodel