A1 Refereed original research article in a scientific journal

Hypoplastic Left Heart Syndrome Cardiomyocytes Exhibit Intrinsic Stress Vulnerabilities and Augmented Stress Responses in vitro;




AuthorsVarela, Margarida; Ampuja, Minna; Broberg, Martin; Ramste, Amanda; Talman, Virpi; Helle, Emmi

PublisherSpringer Science and Business Media LLC

Publication year2026

Journal: Stem cell reviews and reports

Volume22

First page 2549

Last page2567

ISSN2629-3269

eISSN2629-3277

DOIhttps://doi.org/10.1007/s12015-026-11127-3

Publication's open availability at the time of reportingOpen Access

Publication channel's open availability Partially Open Access publication channel

Web address https://doi.org/10.1007/s12015-026-11127-3

Self-archived copy’s web addresshttps://research.utu.fi/converis/portal/detail/Publication/523647638

Self-archived copy's licenceCC BY

Self-archived copy's versionPublisher`s PDF


Abstract

Background: Hypoplastic left heart syndrome (HLHS) is a severe congenital heart defect characterised by underdevelopment of left-sided cardiac structures. While genetic predisposition contributes to HLHS, the relevance of environmental stressors is increasingly recognised, yet the cellular mechanisms linking genetic susceptibility to environmental vulnerability remain unclear. We aimed to identify molecular and functional differences between cardiomyocytes derived from HLHS patients and healthy controls to uncover potential susceptibilities contributing to the HLHS phenotype.

Methods: Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) from HLHS patients and healthy controls were used to examine intrinsic cellular differences. Single-cell RNA sequencing compared baseline transcriptional profiles. Functional assays assessed responses to endothelin-1 (ET-1)-induced stress, cyclic mechanical stretch, and basal or mitogen-stimulated proliferation. These approaches were used to identify intrinsic functional impairments and altered stress responses in HLHS cardiomyocytes.

Results: Single-cell transcriptomics revealed downregulation of gene networks associated with cardiac stress responses, metabolic resilience, and rhythm regulation in HLHS cardiomyocytes. Regulon analysis revealed broad reductions in transcription factor activity across key cardiac regulatory networks. Functionally, HLHS cardiomyocytes showed heightened vulnerability to ET-1, with exaggerated proBNP induction compared with controls. No significant differences were observed following cyclic mechanical stretch. Basal proliferation varied across HLHS lines, while mitogen-induced proliferation remained comparable to controls.

Conclusions: These findings support a model in which intrinsic molecular and functional vulnerabilities in HLHS cardiomyocytes might reduce resilience to developmental stressors. Such gene-environment interactions may contribute to HLHS pathogenesis, underscoring the interplay between genetic predisposition and environmental influences in congenital heart disease.

© 2026. The Author(s).


Downloadable publication

This is an electronic reprint of the original article.
This reprint may differ from the original in pagination and typographic detail. Please cite the original version.




Funding information in the publication
Open Access funding provided by University of Helsinki (including Helsinki University Central Hospital).


Last updated on 16/06/2026 03:11:56 PM