Evaluation of small intestine grafts decellularization methods for corneal tissue engineering.
Advances in the development of cornea substitutes by tissue engineering techniques have focused on the use of decellularized tissue scaffolds. In this work, we evaluated different chemical and physical decellularization methods on small intestine tissues to determine the most appropriate decellulari...
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doaj-73fff2a7973b4dfda056f90d72e6d17e2020-11-24T21:53:39ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0186e6653810.1371/journal.pone.0066538Evaluation of small intestine grafts decellularization methods for corneal tissue engineering.Ana Celeste OliveiraIngrid GarzónAna Maria IonescuVictor CarrielJuan de la Cruz CardonaMiguel González-AndradesMaría del Mar PérezMiguel AlaminosAntonio CamposAdvances in the development of cornea substitutes by tissue engineering techniques have focused on the use of decellularized tissue scaffolds. In this work, we evaluated different chemical and physical decellularization methods on small intestine tissues to determine the most appropriate decellularization protocols for corneal applications. Our results revealed that the most efficient decellularization agents were the SDS and triton X-100 detergents, which were able to efficiently remove most cell nuclei and residual DNA. Histological and histochemical analyses revealed that collagen fibers were preserved upon decellularization with triton X-100, NaCl and sonication, whereas reticular fibers were properly preserved by decellularization with UV exposure. Extracellular matrix glycoproteins were preserved after decellularization with SDS, triton X-100 and sonication, whereas proteoglycans were not affected by any of the decellularization protocols. Tissue transparency was significantly higher than control non-decellularized tissues for all protocols, although the best light transmittance results were found in tissues decellularized with SDS and triton X-100. In conclusion, our results suggest that decellularized intestinal grafts could be used as biological scaffolds for cornea tissue engineering. Decellularization with triton X-100 was able to efficiently remove all cells from the tissues while preserving tissue structure and most fibrillar and non-fibrillar extracellular matrix components, suggesting that this specific decellularization agent could be safely used for efficient decellularization of SI tissues for cornea TE applications.http://europepmc.org/articles/PMC3682956?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ana Celeste Oliveira Ingrid Garzón Ana Maria Ionescu Victor Carriel Juan de la Cruz Cardona Miguel González-Andrades María del Mar Pérez Miguel Alaminos Antonio Campos |
spellingShingle |
Ana Celeste Oliveira Ingrid Garzón Ana Maria Ionescu Victor Carriel Juan de la Cruz Cardona Miguel González-Andrades María del Mar Pérez Miguel Alaminos Antonio Campos Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. PLoS ONE |
author_facet |
Ana Celeste Oliveira Ingrid Garzón Ana Maria Ionescu Victor Carriel Juan de la Cruz Cardona Miguel González-Andrades María del Mar Pérez Miguel Alaminos Antonio Campos |
author_sort |
Ana Celeste Oliveira |
title |
Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
title_short |
Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
title_full |
Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
title_fullStr |
Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
title_full_unstemmed |
Evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
title_sort |
evaluation of small intestine grafts decellularization methods for corneal tissue engineering. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2013-01-01 |
description |
Advances in the development of cornea substitutes by tissue engineering techniques have focused on the use of decellularized tissue scaffolds. In this work, we evaluated different chemical and physical decellularization methods on small intestine tissues to determine the most appropriate decellularization protocols for corneal applications. Our results revealed that the most efficient decellularization agents were the SDS and triton X-100 detergents, which were able to efficiently remove most cell nuclei and residual DNA. Histological and histochemical analyses revealed that collagen fibers were preserved upon decellularization with triton X-100, NaCl and sonication, whereas reticular fibers were properly preserved by decellularization with UV exposure. Extracellular matrix glycoproteins were preserved after decellularization with SDS, triton X-100 and sonication, whereas proteoglycans were not affected by any of the decellularization protocols. Tissue transparency was significantly higher than control non-decellularized tissues for all protocols, although the best light transmittance results were found in tissues decellularized with SDS and triton X-100. In conclusion, our results suggest that decellularized intestinal grafts could be used as biological scaffolds for cornea tissue engineering. Decellularization with triton X-100 was able to efficiently remove all cells from the tissues while preserving tissue structure and most fibrillar and non-fibrillar extracellular matrix components, suggesting that this specific decellularization agent could be safely used for efficient decellularization of SI tissues for cornea TE applications. |
url |
http://europepmc.org/articles/PMC3682956?pdf=render |
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