Promotion of cardiac microtissue assembly within G-CSF-enriched collagen I-cardiogel hybrid hydrogel

Author:

Khodayari Hamid12,Khodayari Saeed3,Rezaee Malihe1ORCID,Rezaeiani Siamak1,Alipour Choshali Mahmoud1,Erfanian Saiedeh14,Muhammadnejad Ahad5,Nili Fatemeh6,Pourmehran Yasaman12,Pirjani Reihaneh7,Rajabi Sarah14,Aghdami Naser8,Nebigil-Désaubry Canan9,Wang Kai10ORCID,Mahmoodzadeh Habibollah3,Pahlavan Sara1ORCID

Affiliation:

1. Department of Stem Cells and Developmental Biology, Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology, ACECR , Tehran 19395-4644, Iran

2. Department of Developmental Biology, University of Science and Culture , Tehran 13145-871, Iran

3. Cancer Research Center, Cancer Institute of Iran, Tehran University of Medical Sciences , Tehran 1419733141, Iran

4. Department of Cell Engineering, Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology, ACECR , Tehran 19395-4644, Iran

5. Cancer Biology Research Center, Cancer Institute of Iran, Tehran University of Medical Sciences , Tehran 1419733141, Iran

6. Department of Pathology, Cancer Institute, Imam Khomeini Hospital Complex, Tehran University of Medical Sciences , Tehran 1419733141, Iran

7. Obstetrics and Gynecology Department, Arash Women’s Hospital, Tehran University of Medical Sciences , Tehran 1653915981, Iran

8. Department of Regenerative Medicine, Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology , Tehran 19395-4644, Iran

9. Institute National de le santé et de la recherce médicale, INSERM, University of Strasbourg, UMR 1260-Regenerative Nanomedicine, CRBS, Central of Research in biomedicine of Strasbourg , Strasbourg 90032, France

10. Department of Physiology and Pathophysiology, School of Basic Medical Sciences, State Key Laboratory of Vascular Homeostasis and Remodeling, Peking University , Beijing 100191, China

Abstract

Abstract Tissue engineering as an interdisciplinary field of biomedical sciences has raised many hopes in the treatment of cardiovascular diseases as well as development of in vitro three-dimensional (3D) cardiac models. This study aimed to engineer a cardiac microtissue using a natural hybrid hydrogel enriched by granulocyte colony-stimulating factor (G-CSF), a bone marrow-derived growth factor. Cardiac ECM hydrogel (Cardiogel: CG) was mixed with collagen type I (ColI) to form the hybrid hydrogel, which was tested for mechanical and biological properties. Three cell types (cardiac progenitor cells, endothelial cells and cardiac fibroblasts) were co-cultured in the G-CSF-enriched hybrid hydrogel to form a 3D microtissue. ColI markedly improved the mechanical properties of CG in the hybrid form with a ratio of 1:1. The hybrid hydrogel demonstrated acceptable biocompatibility and improved retention of encapsulated human foreskin fibroblasts. Co-culture of three cell types in G-CSF enriched hybrid hydrogel, resulted in a faster 3D structure shaping and a well-cellularized microtissue with higher angiogenesis compared to growth factor-free hybrid hydrogel (control). Immunostaining confirmed the presence of CD31+ tube-like structures as well as vimentin+ cardiac fibroblasts and cTNT+ human pluripotent stem cells-derived cardiomyocytes. Bioinformatics analysis of signaling pathways related to the G-CSF receptor in cardiovascular lineage cells, identified target molecules. The in silico-identified STAT3, as one of the major molecules involved in G-CSF signaling of cardiac tissue, was upregulated in G-CSF compared to control. The G-CSF-enriched hybrid hydrogel could be a promising candidate for cardiac tissue engineering, as it facilitates tissue formation and angiogenesis.

Funder

Royan Institute

Cancer Research Center of Tehran University of Medical Science

Publisher

Oxford University Press (OUP)

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