Cardiac microtissues from human pluripotent stem cells recapitulate the phenotype of long-QT syndrome Journal Article


Authors: Giacomelli, E.; Sala, L.; Ward-van Oostwaard, D.; Bellin, M.
Article Title: Cardiac microtissues from human pluripotent stem cells recapitulate the phenotype of long-QT syndrome
Abstract: Background: Human induced pluripotent stem cells (hiPSCs) and their derivative cardiomyocytes (hiPSC-CMs) have been successfully used to study the electrical phenotype of cardiac ion channel diseases. However, strategies to mature CMs and more comprehensive systems recapitulating the heart complexity are required to advance our ability to capture adult phenotypes. Methods: We differentiated wild-type (WT) and long QT syndrome type 1 (LQT1) hiPSCs into CMs, endothelial cells and cardiac fibroblasts. The three cell types were combined to form three-dimensional (3D) spheroids, termed “cardiac microtissues” (cMTs) and the electrophysiological properties were measured using 96-well multi-electrode arrays. Results: LQT1 cMTs displayed prolonged field potential duration compared to WT controls, thus recapitulating the typical feature of LQTS. Isoprenaline caused a positive chronotropic effect on both LQT1 and WT cMTs. The 96-well multi-electrode array format proved suitable to detect electrical changes directly in the 3D tissues. Conclusions: 3D hiPSC cMTs are a scalable tool that can be used to identify LQT electrical hallmarks and drug responses. We anticipate this tool can be adopted by pharmaceutical companies to screen cardio-active compounds. © 2021 The Authors
Keywords: drug screening; long-qt syndrome; cardiac microtissue; human pluripotent stem cell cardiomyocyte; multi-electrode array
Journal Title: Biochemical and Biophysical Research Communications
Volume: 572
ISSN: 0006-291X
Publisher: Elsevier Science, Inc.  
Date Published: 2021-10-01
Start Page: 118
End Page: 124
Language: English
DOI: 10.1016/j.bbrc.2021.07.068
PROVIDER: scopus
PUBMED: 34364290
DOI/URL:
Notes: Article -- Export Date: 1 September 2021 -- Source: Scopus
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