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Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts

Hydrogel‐based three‐dimensional (3D) cellular models are attractive for bioengineering and pharmaceutical development as they can more closely resemble the cellular function of native tissue outside of the body. In general, these models are composed of tissue specific cells embedded within a suppor...

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Autores principales: Deshmukh, Dhananjay V., Pasquero, Nils, Rathore, Gajraj, Zvick, Joel, Bar‐Nur, Ori, Dual, Jurg, Tibbitt, Mark W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7510461/
https://www.ncbi.nlm.nih.gov/pubmed/33005743
http://dx.doi.org/10.1002/btm2.10181
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author Deshmukh, Dhananjay V.
Pasquero, Nils
Rathore, Gajraj
Zvick, Joel
Bar‐Nur, Ori
Dual, Jurg
Tibbitt, Mark W.
author_facet Deshmukh, Dhananjay V.
Pasquero, Nils
Rathore, Gajraj
Zvick, Joel
Bar‐Nur, Ori
Dual, Jurg
Tibbitt, Mark W.
author_sort Deshmukh, Dhananjay V.
collection PubMed
description Hydrogel‐based three‐dimensional (3D) cellular models are attractive for bioengineering and pharmaceutical development as they can more closely resemble the cellular function of native tissue outside of the body. In general, these models are composed of tissue specific cells embedded within a support material, such as a hydrogel. As hydrogel properties directly affect cell function, hydrogel composition is often tailored to the cell type(s) of interest and the functional objective of the model. Here, we develop a parametric analysis and screening method to identify suitable encapsulation conditions for the formation of myotubes from primary murine myoblasts in methacryloyl gelatin (GelMA) hydrogels. The effect of the matrix properties on the myotube formation was investigated by varying GelMA weight percent (wt%, which controls gel modulus), cell density, and Matrigel concentration. Contractile myotubes form via myoblast fusion and are characterized by myosin heavy chain (MyHC) expression. To efficiently screen the gel formulations, we developed a fluorescence‐based plate reader assay to quantify MyHC staining in the gel samples, as a metric of myotube formation. We observed that lower GelMA wt% resulted in increased MyHC staining (myotube formation). The cell density did not significantly affect MyHC staining, while the inclusion of Matrigel increased MyHC staining, however, a concentration dependent effect was not observed. These findings were supported by the observation of spontaneously contracting myotubes in samples selected in the initial screen. This work provides a method to rapidly screen hydrogel formulations for the development of 3D cellular models and provides specific guidance on the formulation of gels for myotube formation from primary murine myoblasts in 3D.
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spelling pubmed-75104612020-09-30 Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts Deshmukh, Dhananjay V. Pasquero, Nils Rathore, Gajraj Zvick, Joel Bar‐Nur, Ori Dual, Jurg Tibbitt, Mark W. Bioeng Transl Med Rapid Communications Hydrogel‐based three‐dimensional (3D) cellular models are attractive for bioengineering and pharmaceutical development as they can more closely resemble the cellular function of native tissue outside of the body. In general, these models are composed of tissue specific cells embedded within a support material, such as a hydrogel. As hydrogel properties directly affect cell function, hydrogel composition is often tailored to the cell type(s) of interest and the functional objective of the model. Here, we develop a parametric analysis and screening method to identify suitable encapsulation conditions for the formation of myotubes from primary murine myoblasts in methacryloyl gelatin (GelMA) hydrogels. The effect of the matrix properties on the myotube formation was investigated by varying GelMA weight percent (wt%, which controls gel modulus), cell density, and Matrigel concentration. Contractile myotubes form via myoblast fusion and are characterized by myosin heavy chain (MyHC) expression. To efficiently screen the gel formulations, we developed a fluorescence‐based plate reader assay to quantify MyHC staining in the gel samples, as a metric of myotube formation. We observed that lower GelMA wt% resulted in increased MyHC staining (myotube formation). The cell density did not significantly affect MyHC staining, while the inclusion of Matrigel increased MyHC staining, however, a concentration dependent effect was not observed. These findings were supported by the observation of spontaneously contracting myotubes in samples selected in the initial screen. This work provides a method to rapidly screen hydrogel formulations for the development of 3D cellular models and provides specific guidance on the formulation of gels for myotube formation from primary murine myoblasts in 3D. John Wiley & Sons, Inc. 2020-09-03 /pmc/articles/PMC7510461/ /pubmed/33005743 http://dx.doi.org/10.1002/btm2.10181 Text en © 2020 The Authors. Bioengineering & Translational Medicine published by Wiley Periodicals LLC on behalf of American Institute of Chemical Engineers. 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 Rapid Communications
Deshmukh, Dhananjay V.
Pasquero, Nils
Rathore, Gajraj
Zvick, Joel
Bar‐Nur, Ori
Dual, Jurg
Tibbitt, Mark W.
Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title_full Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title_fullStr Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title_full_unstemmed Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title_short Screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
title_sort screening method to identify hydrogel formulations that facilitate myotube formation from encapsulated primary myoblasts
topic Rapid Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7510461/
https://www.ncbi.nlm.nih.gov/pubmed/33005743
http://dx.doi.org/10.1002/btm2.10181
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