Cargando…

Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation

Myocardial infarction results in extensive cardiomyocyte death which can lead to fatal arrhythmias or congestive heart failure. Delivery of stem cells to repopulate damaged cardiac tissue may be an attractive and innovative solution for repairing the damaged heart. Instructive polymer scaffolds with...

Descripción completa

Detalles Bibliográficos
Autores principales: Gupta, Mukesh K., Walthall, Joel M., Venkataraman, Raghav, Crowder, Spencer W., Jung, Dae Kwang, Yu, Shann S., Feaster, Tromondae K., Wang, Xintong, Giorgio, Todd D., Hong, Charles C., Baudenbacher, Franz J., Hatzopoulos, Antonis K., Sung, Hak-Joon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3246450/
https://www.ncbi.nlm.nih.gov/pubmed/22216144
http://dx.doi.org/10.1371/journal.pone.0028935
_version_ 1782219947050532864
author Gupta, Mukesh K.
Walthall, Joel M.
Venkataraman, Raghav
Crowder, Spencer W.
Jung, Dae Kwang
Yu, Shann S.
Feaster, Tromondae K.
Wang, Xintong
Giorgio, Todd D.
Hong, Charles C.
Baudenbacher, Franz J.
Hatzopoulos, Antonis K.
Sung, Hak-Joon
author_facet Gupta, Mukesh K.
Walthall, Joel M.
Venkataraman, Raghav
Crowder, Spencer W.
Jung, Dae Kwang
Yu, Shann S.
Feaster, Tromondae K.
Wang, Xintong
Giorgio, Todd D.
Hong, Charles C.
Baudenbacher, Franz J.
Hatzopoulos, Antonis K.
Sung, Hak-Joon
author_sort Gupta, Mukesh K.
collection PubMed
description Myocardial infarction results in extensive cardiomyocyte death which can lead to fatal arrhythmias or congestive heart failure. Delivery of stem cells to repopulate damaged cardiac tissue may be an attractive and innovative solution for repairing the damaged heart. Instructive polymer scaffolds with a wide range of properties have been used extensively to direct the differentiation of stem cells. In this study, we have optimized the chemical and mechanical properties of an electrospun polymer mesh for directed differentiation of embryonic stem cells (ESCs) towards a cardiomyogenic lineage. A combinatorial polymer library was prepared by copolymerizing three distinct subunits at varying molar ratios to tune the physicochemical properties of the resulting polymer: hydrophilic polyethylene glycol (PEG), hydrophobic poly(ε-caprolactone) (PCL), and negatively-charged, carboxylated PCL (CPCL). Murine ESCs were cultured on electrospun polymeric scaffolds and their differentiation to cardiomyocytes was assessed through measurements of viability, intracellular reactive oxygen species (ROS), α-myosin heavy chain expression (α-MHC), and intracellular Ca(2+) signaling dynamics. Interestingly, ESCs on the most compliant substrate, 4%PEG-86%PCL-10%CPCL, exhibited the highest α-MHC expression as well as the most mature Ca(2+) signaling dynamics. To investigate the role of scaffold modulus in ESC differentiation, the scaffold fiber density was reduced by altering the electrospinning parameters. The reduced modulus was found to enhance α-MHC gene expression, and promote maturation of myocyte Ca(2+) handling. These data indicate that ESC-derived cardiomyocyte differentiation and maturation can be promoted by tuning the mechanical and chemical properties of polymer scaffold via copolymerization and electrospinning techniques.
format Online
Article
Text
id pubmed-3246450
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-32464502012-01-03 Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation Gupta, Mukesh K. Walthall, Joel M. Venkataraman, Raghav Crowder, Spencer W. Jung, Dae Kwang Yu, Shann S. Feaster, Tromondae K. Wang, Xintong Giorgio, Todd D. Hong, Charles C. Baudenbacher, Franz J. Hatzopoulos, Antonis K. Sung, Hak-Joon PLoS One Research Article Myocardial infarction results in extensive cardiomyocyte death which can lead to fatal arrhythmias or congestive heart failure. Delivery of stem cells to repopulate damaged cardiac tissue may be an attractive and innovative solution for repairing the damaged heart. Instructive polymer scaffolds with a wide range of properties have been used extensively to direct the differentiation of stem cells. In this study, we have optimized the chemical and mechanical properties of an electrospun polymer mesh for directed differentiation of embryonic stem cells (ESCs) towards a cardiomyogenic lineage. A combinatorial polymer library was prepared by copolymerizing three distinct subunits at varying molar ratios to tune the physicochemical properties of the resulting polymer: hydrophilic polyethylene glycol (PEG), hydrophobic poly(ε-caprolactone) (PCL), and negatively-charged, carboxylated PCL (CPCL). Murine ESCs were cultured on electrospun polymeric scaffolds and their differentiation to cardiomyocytes was assessed through measurements of viability, intracellular reactive oxygen species (ROS), α-myosin heavy chain expression (α-MHC), and intracellular Ca(2+) signaling dynamics. Interestingly, ESCs on the most compliant substrate, 4%PEG-86%PCL-10%CPCL, exhibited the highest α-MHC expression as well as the most mature Ca(2+) signaling dynamics. To investigate the role of scaffold modulus in ESC differentiation, the scaffold fiber density was reduced by altering the electrospinning parameters. The reduced modulus was found to enhance α-MHC gene expression, and promote maturation of myocyte Ca(2+) handling. These data indicate that ESC-derived cardiomyocyte differentiation and maturation can be promoted by tuning the mechanical and chemical properties of polymer scaffold via copolymerization and electrospinning techniques. Public Library of Science 2011-12-27 /pmc/articles/PMC3246450/ /pubmed/22216144 http://dx.doi.org/10.1371/journal.pone.0028935 Text en Gupta et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gupta, Mukesh K.
Walthall, Joel M.
Venkataraman, Raghav
Crowder, Spencer W.
Jung, Dae Kwang
Yu, Shann S.
Feaster, Tromondae K.
Wang, Xintong
Giorgio, Todd D.
Hong, Charles C.
Baudenbacher, Franz J.
Hatzopoulos, Antonis K.
Sung, Hak-Joon
Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title_full Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title_fullStr Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title_full_unstemmed Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title_short Combinatorial Polymer Electrospun Matrices Promote Physiologically-Relevant Cardiomyogenic Stem Cell Differentiation
title_sort combinatorial polymer electrospun matrices promote physiologically-relevant cardiomyogenic stem cell differentiation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3246450/
https://www.ncbi.nlm.nih.gov/pubmed/22216144
http://dx.doi.org/10.1371/journal.pone.0028935
work_keys_str_mv AT guptamukeshk combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT walthalljoelm combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT venkataramanraghav combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT crowderspencerw combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT jungdaekwang combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT yushanns combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT feastertromondaek combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT wangxintong combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT giorgiotoddd combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT hongcharlesc combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT baudenbacherfranzj combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT hatzopoulosantonisk combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation
AT sunghakjoon combinatorialpolymerelectrospunmatricespromotephysiologicallyrelevantcardiomyogenicstemcelldifferentiation