Transient stabilization of human cardiovascular progenitor cells from human pluripotent stem cells in vitro reflects stage-specific heart development in vivo

Author:

Bolesani Emiliano1ORCID,Bornhorst Dorothee23,Iyer Lavanya M45,Zawada Dorota6,Friese Nina1,Morgan Michael7,Lange Lucas7,Gonzalez David M8,Schrode Nadine8,Leffler Andreas9,Wunder Julian9,Franke Annika1,Drakhlis Lika1,Sebra Robert8,Schambach Axel7,Goedel Alexander6,Dubois Nicole C8,Dobreva Gergana10,Moretti Alessandra611,Zelaráyan Laura C4,Abdelilah-Seyfried Salim23,Zweigerdt Robert1

Affiliation:

1. Leibniz Research Laboratories for Biotechnology and Artificial Organs (LEBAO), Department of Cardiac, Thoracic, Transplantation and Vascular Surgery (HTTG), Hannover Medical School , Carl-Neuberg-Strasse 1, 30625 Hannover , Germany

2. Institute of Molecular Biology, Hannover Medical School , Hannover , Germany

3. Institute of Biochemistry and Biology, Potsdam University , Potsdam , Germany

4. Institute of Pharmacology and Toxicology, University Medical Center Göttingen , Göttingen , Germany

5. Epigenetic Regulation and Chromatin Architecture Group, Berlin Institute for Medical Systems Biology, Max-Delbrück Centre for Molecular Medicine , Berlin , Germany

6. First Department of Medicine, Cardiology, Klinikum rechts der Isar, Technical University of Munich, School of Medicine and Health , Munich , Germany

7. Institute of Experimental Hematology, Hannover Medical School , Hannover , Germany

8. Department of Cell, Developmental, and Regenerative Biology, Icahn School of Medicine at Mount Sinai , New York , USA

9. Department of Anesthesiology and Intensive Care Medicine, Hannover Medical School , Hannover , Germany

10. Department of Anatomy and Developmental Biology, Medical Faculty Mannheim, Heidelberg University , Mannheim , Germany

11. German Center for Cardiovascular Research (DZHK), Munich Heart Alliance , Munich , Germany

Abstract

Abstract Aims Understanding the molecular identity of human pluripotent stem cell (hPSC)-derived cardiac progenitors and mechanisms controlling their proliferation and differentiation is valuable for developmental biology and regenerative medicine. Methods and results Here, we show that chemical modulation of histone acetyl transferases (by IQ-1) and WNT (by CHIR99021) synergistically enables the transient and reversible block of directed cardiac differentiation progression on hPSCs. The resulting stabilized cardiovascular progenitors (SCPs) are characterized by ISL1pos/KI-67pos/NKX2-5neg expression. In the presence of the chemical inhibitors, SCPs maintain a proliferation quiescent state. Upon small molecules, removal SCPs resume proliferation and concomitant NKX2-5 up-regulation triggers cell-autonomous differentiation into cardiomyocytes. Directed differentiation of SCPs into the endothelial and smooth muscle lineages confirms their full developmental potential typical of bona fide cardiovascular progenitors. Single-cell RNA-sequencing-based transcriptional profiling of our in vitro generated human SCPs notably reflects the dynamic cellular composition of E8.25-E9.25 posterior second heart field of mouse hearts, hallmarked by nuclear receptor sub-family 2 group F member 2 expression. Investigating molecular mechanisms of SCP stabilization, we found that the cell-autonomously regulated retinoic acid and BMP signalling is governing SCP transition from quiescence towards proliferation and cell-autonomous differentiation, reminiscent of a niche-like behaviour. Conclusion The chemically defined and reversible nature of our stabilization approach provides an unprecedented opportunity to dissect mechanisms of cardiovascular progenitors’ specification and reveal their cellular and molecular properties.

Funder

European Research Council

German Research Foundation

Cluster of Excellence

German Ministry for Education and Science

Förderung aus Mitteln des Niedersächsischen Vorab

European Union H2020

Horizon

Europe

Publisher

Oxford University Press (OUP)

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