Cargando…
A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct
The creation of musculoskeletal tissue represents an alternative for the replacement of soft tissue in reconstructive surgery. However, most of the approaches of creating artificial tissue have their limitations in the size as the maximally obtainable dimension of bioartificial tissue (BAT) is limit...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Hindawi Publishing Corporation
2012
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3335622/ https://www.ncbi.nlm.nih.gov/pubmed/22570779 http://dx.doi.org/10.1155/2012/510852 |
_version_ | 1782230829621051392 |
---|---|
author | Dunda, Sebastian E. Schriever, T. Rosen, C. Opländer, C. Tolba, R. H. Diamantouros, S. Jockenhoevel, S. Pallua, N. |
author_facet | Dunda, Sebastian E. Schriever, T. Rosen, C. Opländer, C. Tolba, R. H. Diamantouros, S. Jockenhoevel, S. Pallua, N. |
author_sort | Dunda, Sebastian E. |
collection | PubMed |
description | The creation of musculoskeletal tissue represents an alternative for the replacement of soft tissue in reconstructive surgery. However, most of the approaches of creating artificial tissue have their limitations in the size as the maximally obtainable dimension of bioartificial tissue (BAT) is limited due to the lack of supporting vessels within the 3-dimensional construct. The seeded myoblasts require high amounts of perfusion, oxygen, and nutrients to survive. To achieve this, we developed a 3-dimensional scaffold which features the epigastric artery as macroscopic core vessel inside the BAT in a rat model (perfused group, n = 4) and a control group (n = 3) without the epigastric vessels and, therefore, without perfusion. The in vivo monitoring of the transplanted myoblasts was assessed by bioluminescence imaging and showed both the viability of the epigastric artery within the 3-dimensional construct and again that cell survival in vivo is highly depending on the blood supply with the beginning of capillarization within the BAT seven days after transplantation in the perfused group. However, further studies focussing on the matrix improvement will be necessary to create a transplantable BAT with the epigastric artery as anastomosable vessel. |
format | Online Article Text |
id | pubmed-3335622 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2012 |
publisher | Hindawi Publishing Corporation |
record_format | MEDLINE/PubMed |
spelling | pubmed-33356222012-05-08 A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct Dunda, Sebastian E. Schriever, T. Rosen, C. Opländer, C. Tolba, R. H. Diamantouros, S. Jockenhoevel, S. Pallua, N. Plast Surg Int Research Article The creation of musculoskeletal tissue represents an alternative for the replacement of soft tissue in reconstructive surgery. However, most of the approaches of creating artificial tissue have their limitations in the size as the maximally obtainable dimension of bioartificial tissue (BAT) is limited due to the lack of supporting vessels within the 3-dimensional construct. The seeded myoblasts require high amounts of perfusion, oxygen, and nutrients to survive. To achieve this, we developed a 3-dimensional scaffold which features the epigastric artery as macroscopic core vessel inside the BAT in a rat model (perfused group, n = 4) and a control group (n = 3) without the epigastric vessels and, therefore, without perfusion. The in vivo monitoring of the transplanted myoblasts was assessed by bioluminescence imaging and showed both the viability of the epigastric artery within the 3-dimensional construct and again that cell survival in vivo is highly depending on the blood supply with the beginning of capillarization within the BAT seven days after transplantation in the perfused group. However, further studies focussing on the matrix improvement will be necessary to create a transplantable BAT with the epigastric artery as anastomosable vessel. Hindawi Publishing Corporation 2012 2012-02-28 /pmc/articles/PMC3335622/ /pubmed/22570779 http://dx.doi.org/10.1155/2012/510852 Text en Copyright © 2012 Sebastian E. Dunda et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Research Article Dunda, Sebastian E. Schriever, T. Rosen, C. Opländer, C. Tolba, R. H. Diamantouros, S. Jockenhoevel, S. Pallua, N. A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title | A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title_full | A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title_fullStr | A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title_full_unstemmed | A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title_short | A New Approach of In Vivo Musculoskeletal Tissue Engineering Using the Epigastric Artery as Central Core Vessel of a 3-Dimensional Construct |
title_sort | new approach of in vivo musculoskeletal tissue engineering using the epigastric artery as central core vessel of a 3-dimensional construct |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3335622/ https://www.ncbi.nlm.nih.gov/pubmed/22570779 http://dx.doi.org/10.1155/2012/510852 |
work_keys_str_mv | AT dundasebastiane anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT schrievert anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT rosenc anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT oplanderc anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT tolbarh anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT diamantouross anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT jockenhoevels anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT palluan anewapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT dundasebastiane newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT schrievert newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT rosenc newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT oplanderc newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT tolbarh newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT diamantouross newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT jockenhoevels newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct AT palluan newapproachofinvivomusculoskeletaltissueengineeringusingtheepigastricarteryascentralcorevesselofa3dimensionalconstruct |