Maturation of hiPSC-derived cardiomyocytes promotes adult alternative splicing of SCN5A and reveals changes in sodium current associated with cardiac arrhythmia

Author:

Campostrini Giulia1ORCID,Kosmidis Georgios1,Ward-van Oostwaard Dorien1ORCID,Davis Richard Paul1ORCID,Yiangou Loukia1ORCID,Ottaviani Daniele23ORCID,Veerman Christiaan Cornelis4,Mei Hailiang5ORCID,Orlova Valeria Viktorovna1ORCID,Wilde Arthur Arnold Maria4ORCID,Bezzina Connie Rose4ORCID,Verkerk Arie Otto46ORCID,Mummery Christine Lindsay17ORCID,Bellin Milena123ORCID

Affiliation:

1. Department of Anatomy and Embryology, Leiden University Medical Center (LUMC) , 2333 ZA Leiden , The Netherlands

2. Department of Biology, University of Padua , 35121 Padua , Italy

3. Veneto Institute of Molecular Medicine , 35129 Padua , Italy

4. Department of Clinical and Experimental Cardiology, Heart Centre, Amsterdam University Medical Centre, location AMC, University of Amsterdam , Meibergdreef 9, 1105 AZ, Amsterdam , The Netherlands

5. Sequencing Analysis Support Core, Leiden University Medical Center , 2333 Leiden , The Netherlands

6. Department of Medical Biology, Amsterdam Cardiovascular Sciences, Amsterdam UMC, University of Amsterdam , Meibergdreef 9, 1105 AZ, Amsterdam , The Netherlands

7. Department of Applied Stem Cell Technologies, University of Twente , 7500 AE, Enschede , The Netherlands

Abstract

Abstract Aims Human-induced pluripotent stem cell-cardiomyocytes (hiPSC-CMs) are widely used to study arrhythmia-associated mutations in ion channels. Among these, the cardiac sodium channel SCN5A undergoes foetal-to-adult isoform switching around birth. Conventional hiPSC-CM cultures, which are phenotypically foetal, have thus far been unable to capture mutations in adult gene isoforms. Here, we investigated whether tri-cellular cross-talk in a three-dimensional (3D) cardiac microtissue (MT) promoted post-natal SCN5A maturation in hiPSC-CMs. Methods and results We derived patient hiPSC-CMs carrying compound mutations in the adult SCN5A exon 6B and exon 4. Electrophysiological properties of patient hiPSC-CMs in monolayer were not altered by the exon 6B mutation compared with isogenic controls since it is not expressed; further, CRISPR/Cas9-mediated excision of the foetal exon 6A did not promote adult SCN5A expression. However, when hiPSC-CMs were matured in 3D cardiac MTs, SCN5A underwent isoform switch and the functional consequences of the mutation located in exon 6B were revealed. Up-regulation of the splicing factor muscleblind-like protein 1 (MBNL1) drove SCN5A post-natal maturation in microtissues since its overexpression in hiPSC-CMs was sufficient to promote exon 6B inclusion, whilst knocking-out MBNL1 failed to foster isoform switch. Conclusions Our study shows that (i) the tri-cellular cardiac microtissues promote post-natal SCN5A isoform switch in hiPSC-CMs, (ii) adult splicing of SCN5A is driven by MBNL1 in these tissues, and (iii) this model can be used for examining post-natal cardiac arrhythmias due to mutations in the exon 6B. Translational perspective The cardiac sodium channel is essential for conducting the electrical impulse in the heart. Postnatal alternative splicing regulation causes mutual exclusive inclusion of fetal or adult exons of the corresponding gene, SCN5A. Typically, immature hiPSCCMs fall short in studying the effect of mutations located in the adult exon. We describe here that an innovative tri-cellular three-dimensional cardiac microtissue culture promotes hiPSC-CMs maturation through upregulation of MBNL1, thus revealing the effect of a pathogenic genetic variant located in the SCN5A adult exon. These results help advancing the use of hiPSC-CMs in studying adult heart disease and for developing personalized medicine applications.

Funder

Netherlands Organisation for Health Research and Development ZonMW

Marie Sklodowska Curie

European Research Council

Rembrandt Institute of Cardiovascular Science

Netherlands Organ-on-Chip Initiative

Ministry of Education, Culture and Science of the Government of the Netherlands

Netherlands Organisation for Scientific Research

Health∼Holland TKI-LSH PPP-allowance

Dutch Heart Foundation-Netherlands CardioVascular Research Initiative

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

Reference55 articles.

1. Human heart disease: lessons from human pluripotent stem cell-derived cardiomyocytes;Giacomelli;Cell Mol Life Sci,2017

2. Differentiation of human pluripotent stem cells to cardiomyocytes under defined conditions;van den Berg;Methods Mol Biol,2016

3. iPSC-cardiomyocyte models of Brugada syndrome—achievements, challenges and future perspectives;Nijak;Int J Mol Sci,2021

4. Human induced pluripotent stem cell-derived cardiomyocytes as models for cardiac channelopathies: a primer for non-electrophysiologists;Garg;Cir Res,2018

5. Clinical spectrum of SCN5A mutations: long QT syndrome, Brugada syndrome, and cardiomyopathy;Wilde;JACC Clin Electrophysiol,2018

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