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In vivo grafting of large engineered heart tissue patches for cardiac repair

Engineered heart tissue (EHT) strategies, by combining cells within a hydrogel matrix, may be a novel therapy for heart failure. EHTs restore cardiac function in rodent injury models, but more data are needed in clinically relevant settings. Accordingly, an upscaled EHT patch (2.5 cm × 1.5 cm × 1.5...

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Autores principales: Jabbour, Richard J., Owen, Thomas J., Pandey, Pragati, Reinsch, Marina, Wang, Brian, King, Oisín, Couch, Liam Steven, Pantou, Dafni, Pitcher, David S., Chowdhury, Rasheda A., Pitoulis, Fotios G., Handa, Balvinder S., Kit-Anan, Worrapong, Perbellini, Filippo, Myles, Rachel C., Stuckey, Daniel J., Dunne, Michael, Shanmuganathan, Mayooran, Peters, Nicholas S., Ng, Fu Siong, Weinberger, Florian, Terracciano, Cesare M., Smith, Godfrey L., Eschenhagen, Thomas, Harding, Sian E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410032/
https://www.ncbi.nlm.nih.gov/pubmed/34369384
http://dx.doi.org/10.1172/jci.insight.144068
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author Jabbour, Richard J.
Owen, Thomas J.
Pandey, Pragati
Reinsch, Marina
Wang, Brian
King, Oisín
Couch, Liam Steven
Pantou, Dafni
Pitcher, David S.
Chowdhury, Rasheda A.
Pitoulis, Fotios G.
Handa, Balvinder S.
Kit-Anan, Worrapong
Perbellini, Filippo
Myles, Rachel C.
Stuckey, Daniel J.
Dunne, Michael
Shanmuganathan, Mayooran
Peters, Nicholas S.
Ng, Fu Siong
Weinberger, Florian
Terracciano, Cesare M.
Smith, Godfrey L.
Eschenhagen, Thomas
Harding, Sian E.
author_facet Jabbour, Richard J.
Owen, Thomas J.
Pandey, Pragati
Reinsch, Marina
Wang, Brian
King, Oisín
Couch, Liam Steven
Pantou, Dafni
Pitcher, David S.
Chowdhury, Rasheda A.
Pitoulis, Fotios G.
Handa, Balvinder S.
Kit-Anan, Worrapong
Perbellini, Filippo
Myles, Rachel C.
Stuckey, Daniel J.
Dunne, Michael
Shanmuganathan, Mayooran
Peters, Nicholas S.
Ng, Fu Siong
Weinberger, Florian
Terracciano, Cesare M.
Smith, Godfrey L.
Eschenhagen, Thomas
Harding, Sian E.
author_sort Jabbour, Richard J.
collection PubMed
description Engineered heart tissue (EHT) strategies, by combining cells within a hydrogel matrix, may be a novel therapy for heart failure. EHTs restore cardiac function in rodent injury models, but more data are needed in clinically relevant settings. Accordingly, an upscaled EHT patch (2.5 cm × 1.5 cm × 1.5 mm) consisting of up to 20 million human induced pluripotent stem cell–derived cardiomyocytes (hPSC-CMs) embedded in a fibrin-based hydrogel was developed. A rabbit myocardial infarction model was then established to test for feasibility and efficacy. Our data showed that hPSC-CMs in EHTs became more aligned over 28 days and had improved contraction kinetics and faster calcium transients. Blinded echocardiographic analysis revealed a significant improvement in function in infarcted hearts that received EHTs, along with reduction in infarct scar size by 35%. Vascularization from the host to the patch was observed at week 1 and stable to week 4, but electrical coupling between patch and host heart was not observed. In vivo telemetry recordings and ex vivo arrhythmia provocation protocols showed that the patch was not pro-arrhythmic. In summary, EHTs improved function and reduced scar size without causing arrhythmia, which may be due to the lack of electrical coupling between patch and host heart.
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spelling pubmed-84100322021-09-07 In vivo grafting of large engineered heart tissue patches for cardiac repair Jabbour, Richard J. Owen, Thomas J. Pandey, Pragati Reinsch, Marina Wang, Brian King, Oisín Couch, Liam Steven Pantou, Dafni Pitcher, David S. Chowdhury, Rasheda A. Pitoulis, Fotios G. Handa, Balvinder S. Kit-Anan, Worrapong Perbellini, Filippo Myles, Rachel C. Stuckey, Daniel J. Dunne, Michael Shanmuganathan, Mayooran Peters, Nicholas S. Ng, Fu Siong Weinberger, Florian Terracciano, Cesare M. Smith, Godfrey L. Eschenhagen, Thomas Harding, Sian E. JCI Insight Research Article Engineered heart tissue (EHT) strategies, by combining cells within a hydrogel matrix, may be a novel therapy for heart failure. EHTs restore cardiac function in rodent injury models, but more data are needed in clinically relevant settings. Accordingly, an upscaled EHT patch (2.5 cm × 1.5 cm × 1.5 mm) consisting of up to 20 million human induced pluripotent stem cell–derived cardiomyocytes (hPSC-CMs) embedded in a fibrin-based hydrogel was developed. A rabbit myocardial infarction model was then established to test for feasibility and efficacy. Our data showed that hPSC-CMs in EHTs became more aligned over 28 days and had improved contraction kinetics and faster calcium transients. Blinded echocardiographic analysis revealed a significant improvement in function in infarcted hearts that received EHTs, along with reduction in infarct scar size by 35%. Vascularization from the host to the patch was observed at week 1 and stable to week 4, but electrical coupling between patch and host heart was not observed. In vivo telemetry recordings and ex vivo arrhythmia provocation protocols showed that the patch was not pro-arrhythmic. In summary, EHTs improved function and reduced scar size without causing arrhythmia, which may be due to the lack of electrical coupling between patch and host heart. American Society for Clinical Investigation 2021-08-09 /pmc/articles/PMC8410032/ /pubmed/34369384 http://dx.doi.org/10.1172/jci.insight.144068 Text en © 2021 Jabbour et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Jabbour, Richard J.
Owen, Thomas J.
Pandey, Pragati
Reinsch, Marina
Wang, Brian
King, Oisín
Couch, Liam Steven
Pantou, Dafni
Pitcher, David S.
Chowdhury, Rasheda A.
Pitoulis, Fotios G.
Handa, Balvinder S.
Kit-Anan, Worrapong
Perbellini, Filippo
Myles, Rachel C.
Stuckey, Daniel J.
Dunne, Michael
Shanmuganathan, Mayooran
Peters, Nicholas S.
Ng, Fu Siong
Weinberger, Florian
Terracciano, Cesare M.
Smith, Godfrey L.
Eschenhagen, Thomas
Harding, Sian E.
In vivo grafting of large engineered heart tissue patches for cardiac repair
title In vivo grafting of large engineered heart tissue patches for cardiac repair
title_full In vivo grafting of large engineered heart tissue patches for cardiac repair
title_fullStr In vivo grafting of large engineered heart tissue patches for cardiac repair
title_full_unstemmed In vivo grafting of large engineered heart tissue patches for cardiac repair
title_short In vivo grafting of large engineered heart tissue patches for cardiac repair
title_sort in vivo grafting of large engineered heart tissue patches for cardiac repair
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410032/
https://www.ncbi.nlm.nih.gov/pubmed/34369384
http://dx.doi.org/10.1172/jci.insight.144068
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