Enhancing Maturation and Translatability of Human Pluripotent Stem Cell-Derived Cardiomyocytes through a Novel Medium Containing Acetyl-CoA Carboxylase 2 Inhibitor

Author:

Correia Cláudia1,Christoffersson Jonas1ORCID,Tejedor Sandra12ORCID,El-Haou Saïd3,Matadamas-Guzman Meztli1ORCID,Nair Syam1,Dönnes Pierre24ORCID,Musa Gentian1,Rohman Mattias5,Sundqvist Monika1,Riddle Rebecca B.16ORCID,Nugraha Bramasta1ORCID,Bellido Ioritz Sorzabal7,Johansson Markus2ORCID,Wang Qing-Dong1ORCID,Hidalgo Alejandro18,Jennbacken Karin1ORCID,Synnergren Jane29,Später Daniela18

Affiliation:

1. Research and Early Development, Cardiovascular, Renal and Metabolism (CVRM), BioPharmaceuticals R&D, AstraZeneca, 43150 Gothenburg, Sweden

2. Systems Biology Research Center, School of Bioscience, University of Skövde, 54128 Skövde, Sweden

3. Mechanistic Biology and Profiling, Discovery Sciences, AstraZeneca R&D, Cambridge CB2 0AA, UK

4. SciCross AB, 54135 Skövde, Sweden

5. Discovery Sciences, BioPharmaceuticals R&D, AstraZeneca, 43150 Gothenburg, Sweden

6. Department of Pharmacology, University of Cambridge, Cambridge CB2 1PD, UK

7. Data Sciences and Quantitative Biology, Discovery Sciences, AstraZeneca R&D, Cambridge CB2 0AA, UK

8. Integrated Cardio Metabolic Centre (ICMC), Department of Medicine, Karolinska Institute, Blickagången 6, 14157 Huddinge, Sweden

9. Department of Molecular and Clinical Medicine, Institute of Medicine, Sahlgrenska Academy, University of Gothenburg, 41345 Gothenburg, Sweden

Abstract

Human pluripotent stem cell-derived cardiomyocytes (hPSC-CMs) constitute an appealing tool for drug discovery, disease modeling, and cardiotoxicity screening. However, their physiological immaturity, resembling CMs in the late fetal stage, limits their utility. Herein, we have developed a novel, scalable cell culture medium designed to enhance the maturation of hPSC-CMs. This medium facilitates a metabolic shift towards fatty acid utilization and augments mitochondrial function by targeting Acetyl-CoA carboxylase 2 (ACC2) with a specific small molecule inhibitor. Our findings demonstrate that this maturation protocol significantly advances the metabolic, structural, molecular and functional maturity of hPSC-CMs at various stages of differentiation. Furthermore, it enables the creation of cardiac microtissues with superior structural integrity and contractile properties. Notably, hPSC-CMs cultured in this optimized maturation medium display increased accuracy in modeling a hypertrophic cardiac phenotype following acute endothelin-1 induction and show a strong correlation between in vitro and in vivo target engagement in drug screening efforts. This approach holds promise for improving the utility and translatability of hPSC-CMs in cardiac disease modeling and drug discovery.

Funder

Swedish Knowledge Foundation

Publisher

MDPI AG

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