Cargando…

A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues

For creating functional tissue analogues in tissue engineering, stem cells require very specific 3D microenvironments to thrive and mature. Demanding (stem) cell types that are used nowadays can find such an environment in a heterogeneous protein mixture with the trade name Matrigel. Several variati...

Descripción completa

Detalles Bibliográficos
Autores principales: Klotz, Barbara J., Oosterhoff, Loes A., Utomo, Lizette, Lim, Khoon S., Vallmajo-Martin, Queralt, Clevers, Hans, Woodfield, Tim B. F., Rosenberg, Antoine J. W. P., Malda, Jos, Ehrbar, Martin, Spee, Bart, Gawlitta, Debby
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116179/
https://www.ncbi.nlm.nih.gov/pubmed/31402634
http://dx.doi.org/10.1002/adhm.201900979
_version_ 1783514199147675648
author Klotz, Barbara J.
Oosterhoff, Loes A.
Utomo, Lizette
Lim, Khoon S.
Vallmajo-Martin, Queralt
Clevers, Hans
Woodfield, Tim B. F.
Rosenberg, Antoine J. W. P.
Malda, Jos
Ehrbar, Martin
Spee, Bart
Gawlitta, Debby
author_facet Klotz, Barbara J.
Oosterhoff, Loes A.
Utomo, Lizette
Lim, Khoon S.
Vallmajo-Martin, Queralt
Clevers, Hans
Woodfield, Tim B. F.
Rosenberg, Antoine J. W. P.
Malda, Jos
Ehrbar, Martin
Spee, Bart
Gawlitta, Debby
author_sort Klotz, Barbara J.
collection PubMed
description For creating functional tissue analogues in tissue engineering, stem cells require very specific 3D microenvironments to thrive and mature. Demanding (stem) cell types that are used nowadays can find such an environment in a heterogeneous protein mixture with the trade name Matrigel. Several variations of synthetic hydrogel platforms composed of poly(ethylene glycol) (PEG), which are spiked with peptides, have been recently developed and shown equivalence to Matrigel for stem cell differentiation. Here a clinically relevant hydrogel platform, based on PEG and gelatin, which even outperforms Matrigel when targeting 3D prevascularized bone and liver organoid tissue engineering models is presented. The hybrid hydrogel with natural and synthetic components stimulates efficient cell differentiation, superior to Matrigel models. Furthermore, the strength of this hydrogel lies in the option to covalently incorporate unmodified proteins. These results demonstrate how a hybrid hydrogel platform with intermediate biological complexity, when compared to existing biological materials and synthetic PEG-peptide approaches, can efficiently support tissue development from human primary cells.
format Online
Article
Text
id pubmed-7116179
institution National Center for Biotechnology Information
language English
publishDate 2019
record_format MEDLINE/PubMed
spelling pubmed-71161792020-10-16 A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues Klotz, Barbara J. Oosterhoff, Loes A. Utomo, Lizette Lim, Khoon S. Vallmajo-Martin, Queralt Clevers, Hans Woodfield, Tim B. F. Rosenberg, Antoine J. W. P. Malda, Jos Ehrbar, Martin Spee, Bart Gawlitta, Debby Adv Healthc Mater Article For creating functional tissue analogues in tissue engineering, stem cells require very specific 3D microenvironments to thrive and mature. Demanding (stem) cell types that are used nowadays can find such an environment in a heterogeneous protein mixture with the trade name Matrigel. Several variations of synthetic hydrogel platforms composed of poly(ethylene glycol) (PEG), which are spiked with peptides, have been recently developed and shown equivalence to Matrigel for stem cell differentiation. Here a clinically relevant hydrogel platform, based on PEG and gelatin, which even outperforms Matrigel when targeting 3D prevascularized bone and liver organoid tissue engineering models is presented. The hybrid hydrogel with natural and synthetic components stimulates efficient cell differentiation, superior to Matrigel models. Furthermore, the strength of this hydrogel lies in the option to covalently incorporate unmodified proteins. These results demonstrate how a hybrid hydrogel platform with intermediate biological complexity, when compared to existing biological materials and synthetic PEG-peptide approaches, can efficiently support tissue development from human primary cells. 2019-10-01 2019-08-12 /pmc/articles/PMC7116179/ /pubmed/31402634 http://dx.doi.org/10.1002/adhm.201900979 Text en https://creativecommons.org/licenses/by-nc/4.0/ This is an open access article under the terms of the Creative Commons Attribution-NonCommercial License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Article
Klotz, Barbara J.
Oosterhoff, Loes A.
Utomo, Lizette
Lim, Khoon S.
Vallmajo-Martin, Queralt
Clevers, Hans
Woodfield, Tim B. F.
Rosenberg, Antoine J. W. P.
Malda, Jos
Ehrbar, Martin
Spee, Bart
Gawlitta, Debby
A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title_full A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title_fullStr A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title_full_unstemmed A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title_short A Versatile Biosynthetic Hydrogel Platform for Engineering of Tissue Analogues
title_sort versatile biosynthetic hydrogel platform for engineering of tissue analogues
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116179/
https://www.ncbi.nlm.nih.gov/pubmed/31402634
http://dx.doi.org/10.1002/adhm.201900979
work_keys_str_mv AT klotzbarbaraj aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT oosterhoffloesa aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT utomolizette aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT limkhoons aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT vallmajomartinqueralt aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT clevershans aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT woodfieldtimbf aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT rosenbergantoinejwp aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT maldajos aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT ehrbarmartin aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT speebart aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT gawlittadebby aversatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT klotzbarbaraj versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT oosterhoffloesa versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT utomolizette versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT limkhoons versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT vallmajomartinqueralt versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT clevershans versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT woodfieldtimbf versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT rosenbergantoinejwp versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT maldajos versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT ehrbarmartin versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT speebart versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues
AT gawlittadebby versatilebiosynthetichydrogelplatformforengineeringoftissueanalogues