Cargando…

A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model

Growth plate injuries affecting the pediatric population may cause unwanted bony repair tissue that leads to abnormal bone elongation. Clinical treatment involves bony bar resection and implantation of an interpositional material, but success is limited and the bony bar often reforms. No treatment a...

Descripción completa

Detalles Bibliográficos
Autores principales: Yu, Yangyi, Fischenich, Kristine M., Schoonraad, Sarah A., Weatherford, Shane, Uzcategui, Asais Camila, Eckstein, Kevin, Muralidharan, Archish, Crespo-Cuevas, Victor, Rodriguez-Fontan, Francisco, Killgore, Jason P., Li, Guangheng, McLeod, Robert R., Miller, Nancy Hadley, Ferguson, Virginia L., Bryant, Stephanie J., Payne, Karin A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9581903/
https://www.ncbi.nlm.nih.gov/pubmed/36261516
http://dx.doi.org/10.1038/s41536-022-00256-1
_version_ 1784812731865497600
author Yu, Yangyi
Fischenich, Kristine M.
Schoonraad, Sarah A.
Weatherford, Shane
Uzcategui, Asais Camila
Eckstein, Kevin
Muralidharan, Archish
Crespo-Cuevas, Victor
Rodriguez-Fontan, Francisco
Killgore, Jason P.
Li, Guangheng
McLeod, Robert R.
Miller, Nancy Hadley
Ferguson, Virginia L.
Bryant, Stephanie J.
Payne, Karin A.
author_facet Yu, Yangyi
Fischenich, Kristine M.
Schoonraad, Sarah A.
Weatherford, Shane
Uzcategui, Asais Camila
Eckstein, Kevin
Muralidharan, Archish
Crespo-Cuevas, Victor
Rodriguez-Fontan, Francisco
Killgore, Jason P.
Li, Guangheng
McLeod, Robert R.
Miller, Nancy Hadley
Ferguson, Virginia L.
Bryant, Stephanie J.
Payne, Karin A.
author_sort Yu, Yangyi
collection PubMed
description Growth plate injuries affecting the pediatric population may cause unwanted bony repair tissue that leads to abnormal bone elongation. Clinical treatment involves bony bar resection and implantation of an interpositional material, but success is limited and the bony bar often reforms. No treatment attempts to regenerate the growth plate cartilage. Herein we develop a 3D printed growth plate mimetic composite as a potential regenerative medicine approach with the goal of preventing limb length discrepancies and inducing cartilage regeneration. A poly(ethylene glycol)-based resin was used with digital light processing to 3D print a mechanical support structure infilled with a soft cartilage-mimetic hydrogel containing chondrogenic cues. Our biomimetic composite has similar mechanical properties to native rabbit growth plate and induced chondrogenic differentiation of rabbit mesenchymal stromal cells in vitro. We evaluated its efficacy as a regenerative interpositional material applied after bony bar resection in a rabbit model of growth plate injury. Radiographic imaging was used to monitor limb length and tibial plateau angle, microcomputed tomography assessed bone morphology, and histology characterized the repair tissue that formed. Our 3D printed growth plate mimetic composite resulted in improved tibial lengthening compared to an untreated control, cartilage-mimetic hydrogel only condition, and a fat graft. However, in vivo the 3D printed growth plate mimetic composite did not show cartilage regeneration within the construct histologically. Nevertheless, this study demonstrates the feasibility of a 3D printed biomimetic composite to improve limb lengthening, a key functional outcome, supporting its further investigation as a treatment for growth plate injuries.
format Online
Article
Text
id pubmed-9581903
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-95819032022-10-21 A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model Yu, Yangyi Fischenich, Kristine M. Schoonraad, Sarah A. Weatherford, Shane Uzcategui, Asais Camila Eckstein, Kevin Muralidharan, Archish Crespo-Cuevas, Victor Rodriguez-Fontan, Francisco Killgore, Jason P. Li, Guangheng McLeod, Robert R. Miller, Nancy Hadley Ferguson, Virginia L. Bryant, Stephanie J. Payne, Karin A. NPJ Regen Med Article Growth plate injuries affecting the pediatric population may cause unwanted bony repair tissue that leads to abnormal bone elongation. Clinical treatment involves bony bar resection and implantation of an interpositional material, but success is limited and the bony bar often reforms. No treatment attempts to regenerate the growth plate cartilage. Herein we develop a 3D printed growth plate mimetic composite as a potential regenerative medicine approach with the goal of preventing limb length discrepancies and inducing cartilage regeneration. A poly(ethylene glycol)-based resin was used with digital light processing to 3D print a mechanical support structure infilled with a soft cartilage-mimetic hydrogel containing chondrogenic cues. Our biomimetic composite has similar mechanical properties to native rabbit growth plate and induced chondrogenic differentiation of rabbit mesenchymal stromal cells in vitro. We evaluated its efficacy as a regenerative interpositional material applied after bony bar resection in a rabbit model of growth plate injury. Radiographic imaging was used to monitor limb length and tibial plateau angle, microcomputed tomography assessed bone morphology, and histology characterized the repair tissue that formed. Our 3D printed growth plate mimetic composite resulted in improved tibial lengthening compared to an untreated control, cartilage-mimetic hydrogel only condition, and a fat graft. However, in vivo the 3D printed growth plate mimetic composite did not show cartilage regeneration within the construct histologically. Nevertheless, this study demonstrates the feasibility of a 3D printed biomimetic composite to improve limb lengthening, a key functional outcome, supporting its further investigation as a treatment for growth plate injuries. Nature Publishing Group UK 2022-10-19 /pmc/articles/PMC9581903/ /pubmed/36261516 http://dx.doi.org/10.1038/s41536-022-00256-1 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This 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 license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license 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 license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Yu, Yangyi
Fischenich, Kristine M.
Schoonraad, Sarah A.
Weatherford, Shane
Uzcategui, Asais Camila
Eckstein, Kevin
Muralidharan, Archish
Crespo-Cuevas, Victor
Rodriguez-Fontan, Francisco
Killgore, Jason P.
Li, Guangheng
McLeod, Robert R.
Miller, Nancy Hadley
Ferguson, Virginia L.
Bryant, Stephanie J.
Payne, Karin A.
A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title_full A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title_fullStr A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title_full_unstemmed A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title_short A 3D printed mimetic composite for the treatment of growth plate injuries in a rabbit model
title_sort 3d printed mimetic composite for the treatment of growth plate injuries in a rabbit model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9581903/
https://www.ncbi.nlm.nih.gov/pubmed/36261516
http://dx.doi.org/10.1038/s41536-022-00256-1
work_keys_str_mv AT yuyangyi a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT fischenichkristinem a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT schoonraadsaraha a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT weatherfordshane a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT uzcateguiasaiscamila a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT ecksteinkevin a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT muralidharanarchish a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT crespocuevasvictor a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT rodriguezfontanfrancisco a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT killgorejasonp a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT liguangheng a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT mcleodrobertr a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT millernancyhadley a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT fergusonvirginial a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT bryantstephaniej a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT paynekarina a3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT yuyangyi 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT fischenichkristinem 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT schoonraadsaraha 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT weatherfordshane 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT uzcateguiasaiscamila 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT ecksteinkevin 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT muralidharanarchish 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT crespocuevasvictor 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT rodriguezfontanfrancisco 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT killgorejasonp 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT liguangheng 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT mcleodrobertr 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT millernancyhadley 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT fergusonvirginial 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT bryantstephaniej 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel
AT paynekarina 3dprintedmimeticcompositeforthetreatmentofgrowthplateinjuriesinarabbitmodel