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Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses

Tissue engineering approaches have the potential to increase the physiologic relevance of human iPS-derived cells, such as cardiomyocytes (iPS-CM). However, forming Engineered Heart Muscle (EHM) typically requires >1 million cells per tissue. Existing miniaturization strategies involve complex ap...

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Autores principales: Huebsch, Nathaniel, Loskill, Peter, Deveshwar, Nikhil, Spencer, C. Ian, Judge, Luke M., Mandegar, Mohammad A., B. Fox, Cade, Mohamed, Tamer M.A., Ma, Zhen, Mathur, Anurag, Sheehan, Alice M., Truong, Annie, Saxton, Mike, Yoo, Jennie, Srivastava, Deepak, Desai, Tejal A., So, Po-Lin, Healy, Kevin E., Conklin, Bruce R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837370/
https://www.ncbi.nlm.nih.gov/pubmed/27095412
http://dx.doi.org/10.1038/srep24726
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author Huebsch, Nathaniel
Loskill, Peter
Deveshwar, Nikhil
Spencer, C. Ian
Judge, Luke M.
Mandegar, Mohammad A.
B. Fox, Cade
Mohamed, Tamer M.A.
Ma, Zhen
Mathur, Anurag
Sheehan, Alice M.
Truong, Annie
Saxton, Mike
Yoo, Jennie
Srivastava, Deepak
Desai, Tejal A.
So, Po-Lin
Healy, Kevin E.
Conklin, Bruce R.
author_facet Huebsch, Nathaniel
Loskill, Peter
Deveshwar, Nikhil
Spencer, C. Ian
Judge, Luke M.
Mandegar, Mohammad A.
B. Fox, Cade
Mohamed, Tamer M.A.
Ma, Zhen
Mathur, Anurag
Sheehan, Alice M.
Truong, Annie
Saxton, Mike
Yoo, Jennie
Srivastava, Deepak
Desai, Tejal A.
So, Po-Lin
Healy, Kevin E.
Conklin, Bruce R.
author_sort Huebsch, Nathaniel
collection PubMed
description Tissue engineering approaches have the potential to increase the physiologic relevance of human iPS-derived cells, such as cardiomyocytes (iPS-CM). However, forming Engineered Heart Muscle (EHM) typically requires >1 million cells per tissue. Existing miniaturization strategies involve complex approaches not amenable to mass production, limiting the ability to use EHM for iPS-based disease modeling and drug screening. Micro-scale cardiospheres are easily produced, but do not facilitate assembly of elongated muscle or direct force measurements. Here we describe an approach that combines features of EHM and cardiospheres: Micro-Heart Muscle (μHM) arrays, in which elongated muscle fibers are formed in an easily fabricated template, with as few as 2,000 iPS-CM per individual tissue. Within μHM, iPS-CM exhibit uniaxial contractility and alignment, robust sarcomere assembly, and reduced variability and hypersensitivity in drug responsiveness, compared to monolayers with the same cellular composition. μHM mounted onto standard force measurement apparatus exhibited a robust Frank-Starling response to external stretch, and a dose-dependent inotropic response to the β-adrenergic agonist isoproterenol. Based on the ease of fabrication, the potential for mass production and the small number of cells required to form μHM, this system provides a potentially powerful tool to study cardiomyocyte maturation, disease and cardiotoxicology in vitro.
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spelling pubmed-48373702016-04-27 Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses Huebsch, Nathaniel Loskill, Peter Deveshwar, Nikhil Spencer, C. Ian Judge, Luke M. Mandegar, Mohammad A. B. Fox, Cade Mohamed, Tamer M.A. Ma, Zhen Mathur, Anurag Sheehan, Alice M. Truong, Annie Saxton, Mike Yoo, Jennie Srivastava, Deepak Desai, Tejal A. So, Po-Lin Healy, Kevin E. Conklin, Bruce R. Sci Rep Article Tissue engineering approaches have the potential to increase the physiologic relevance of human iPS-derived cells, such as cardiomyocytes (iPS-CM). However, forming Engineered Heart Muscle (EHM) typically requires >1 million cells per tissue. Existing miniaturization strategies involve complex approaches not amenable to mass production, limiting the ability to use EHM for iPS-based disease modeling and drug screening. Micro-scale cardiospheres are easily produced, but do not facilitate assembly of elongated muscle or direct force measurements. Here we describe an approach that combines features of EHM and cardiospheres: Micro-Heart Muscle (μHM) arrays, in which elongated muscle fibers are formed in an easily fabricated template, with as few as 2,000 iPS-CM per individual tissue. Within μHM, iPS-CM exhibit uniaxial contractility and alignment, robust sarcomere assembly, and reduced variability and hypersensitivity in drug responsiveness, compared to monolayers with the same cellular composition. μHM mounted onto standard force measurement apparatus exhibited a robust Frank-Starling response to external stretch, and a dose-dependent inotropic response to the β-adrenergic agonist isoproterenol. Based on the ease of fabrication, the potential for mass production and the small number of cells required to form μHM, this system provides a potentially powerful tool to study cardiomyocyte maturation, disease and cardiotoxicology in vitro. Nature Publishing Group 2016-04-20 /pmc/articles/PMC4837370/ /pubmed/27095412 http://dx.doi.org/10.1038/srep24726 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Huebsch, Nathaniel
Loskill, Peter
Deveshwar, Nikhil
Spencer, C. Ian
Judge, Luke M.
Mandegar, Mohammad A.
B. Fox, Cade
Mohamed, Tamer M.A.
Ma, Zhen
Mathur, Anurag
Sheehan, Alice M.
Truong, Annie
Saxton, Mike
Yoo, Jennie
Srivastava, Deepak
Desai, Tejal A.
So, Po-Lin
Healy, Kevin E.
Conklin, Bruce R.
Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title_full Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title_fullStr Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title_full_unstemmed Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title_short Miniaturized iPS-Cell-Derived Cardiac Muscles for Physiologically Relevant Drug Response Analyses
title_sort miniaturized ips-cell-derived cardiac muscles for physiologically relevant drug response analyses
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837370/
https://www.ncbi.nlm.nih.gov/pubmed/27095412
http://dx.doi.org/10.1038/srep24726
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