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Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model

Tissue‐engineered whole disc replacements are an emerging treatment strategy for advanced intervertebral disc degeneration. A challenge facing the translation of tissue‐engineered disc replacement to clinical use are the opposing needs of initial immobilization to advantage integration contrasted wi...

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Autores principales: Gullbrand, Sarah E., Kim, Dong Hwa, Ashinsky, Beth G., Bonnevie, Edward D., Smith, Harvey E., Mauck, Robert L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7323465/
https://www.ncbi.nlm.nih.gov/pubmed/32613161
http://dx.doi.org/10.1002/jsp2.1086
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author Gullbrand, Sarah E.
Kim, Dong Hwa
Ashinsky, Beth G.
Bonnevie, Edward D.
Smith, Harvey E.
Mauck, Robert L.
author_facet Gullbrand, Sarah E.
Kim, Dong Hwa
Ashinsky, Beth G.
Bonnevie, Edward D.
Smith, Harvey E.
Mauck, Robert L.
author_sort Gullbrand, Sarah E.
collection PubMed
description Tissue‐engineered whole disc replacements are an emerging treatment strategy for advanced intervertebral disc degeneration. A challenge facing the translation of tissue‐engineered disc replacement to clinical use are the opposing needs of initial immobilization to advantage integration contrasted with physiologic loading and its anabolic effects. Here, we utilize our established rat tail model of tissue engineered disc replacement with external fixation to study the effects of remobilization at two time points postimplantation on engineered disc structure, composition, and function. Our results suggest that the restoration of mechanical loading following immobilization enhanced collagen and proteoglycan content within the nucleus pulposus and annulus fibrosus of the engineered discs, in addition to improving the integration of the endplate region of the construct with native bone. Despite these benefits, angulation of the vertebral bodies at the implanted level occurred following remobilization at both early and late time points, reducing tensile failure properties in the remobilized groups compared to the fixed group. These results demonstrate the necessity of restoring physiologic mechanical loading to engineered disc implants in vivo, and the need to transition toward their evaluation in larger animal models with more human‐like anatomy and motion compared to the rat tail.
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spelling pubmed-73234652020-06-30 Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model Gullbrand, Sarah E. Kim, Dong Hwa Ashinsky, Beth G. Bonnevie, Edward D. Smith, Harvey E. Mauck, Robert L. JOR Spine Research Articles Tissue‐engineered whole disc replacements are an emerging treatment strategy for advanced intervertebral disc degeneration. A challenge facing the translation of tissue‐engineered disc replacement to clinical use are the opposing needs of initial immobilization to advantage integration contrasted with physiologic loading and its anabolic effects. Here, we utilize our established rat tail model of tissue engineered disc replacement with external fixation to study the effects of remobilization at two time points postimplantation on engineered disc structure, composition, and function. Our results suggest that the restoration of mechanical loading following immobilization enhanced collagen and proteoglycan content within the nucleus pulposus and annulus fibrosus of the engineered discs, in addition to improving the integration of the endplate region of the construct with native bone. Despite these benefits, angulation of the vertebral bodies at the implanted level occurred following remobilization at both early and late time points, reducing tensile failure properties in the remobilized groups compared to the fixed group. These results demonstrate the necessity of restoring physiologic mechanical loading to engineered disc implants in vivo, and the need to transition toward their evaluation in larger animal models with more human‐like anatomy and motion compared to the rat tail. John Wiley & Sons, Inc. 2020-05-13 /pmc/articles/PMC7323465/ /pubmed/32613161 http://dx.doi.org/10.1002/jsp2.1086 Text en © 2020 The Authors. JOR Spine published by Wiley Periodicals LLC on behalf of Orthopaedic Research Society This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Gullbrand, Sarah E.
Kim, Dong Hwa
Ashinsky, Beth G.
Bonnevie, Edward D.
Smith, Harvey E.
Mauck, Robert L.
Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title_full Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title_fullStr Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title_full_unstemmed Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title_short Restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
title_sort restoration of physiologic loading modulates engineered intervertebral disc structure and function in an in vivo model
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7323465/
https://www.ncbi.nlm.nih.gov/pubmed/32613161
http://dx.doi.org/10.1002/jsp2.1086
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