Unraveling Verapamil’s Multidimensional Role in Diabetes Therapy: From β-Cell Regeneration to Cholecystokinin Induction in Zebrafish and MIN6 Cell-Line Models

Author:

Arefanian Hossein1ORCID,Al Madhoun Ashraf23ORCID,Al-Rashed Fatema1ORCID,Alzaid Fawaz45,Bahman Fatemah1,Nizam Rasheeba2ORCID,Alhusayan Mohammed4ORCID,John Sumi2ORCID,Jacob Sindhu2,Williams Michayla R.4,Abukhalaf Nermeen3,Shenouda Steve1,Joseph Shibu6,AlSaeed Halemah1ORCID,Kochumon Shihab1,Mohammad Anwar7ORCID,Koti Lubaina2,Sindhu Sardar13ORCID,Abu-Farha Mohamed78ORCID,Abubaker Jehad7ORCID,Thanaraj Thangavel Alphonse2ORCID,Ahmad Rasheed1ORCID,Al-Mulla Fahd2ORCID

Affiliation:

1. Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait

2. Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait

3. Animal and Imaging Core Facility, Dasman Diabetes Institute, Dasman 15462, Kuwait

4. Department of Bioenergetics & Neurometabolism, Dasman Diabetes Institute, Dasman 15462, Kuwait

5. Institut Necker Enfants Malades (INEM), French Institute of Health and Medical Research (INSERM), Immunity & Metabolism of Diabetes (IMMEDIAB), Université de Paris Cité, 75014 Paris, France

6. Special Services Facilities, Dasman Diabetes Institute, Dasman 15462, Kuwait

7. Department of Biochemistry and Molecular Biology, Dasman Diabetes Institute, Dasman 15462, Kuwait

8. Department of Translational Research, Dasman Diabetes Institute, Dasman 15462, Kuwait

Abstract

This study unveils verapamil’s compelling cytoprotective and proliferative effects on pancreatic β-cells amidst diabetic stressors, spotlighting its unforeseen role in augmenting cholecystokinin (CCK) expression. Through rigorous investigations employing MIN6 β-cells and zebrafish models under type 1 and type 2 diabetic conditions, we demonstrate verapamil’s capacity to significantly boost β-cell proliferation, enhance glucose-stimulated insulin secretion, and fortify cellular resilience. A pivotal revelation of our research is verapamil’s induction of CCK, a peptide hormone known for its role in nutrient digestion and insulin secretion, which signifies a novel pathway through which verapamil exerts its therapeutic effects. Furthermore, our mechanistic insights reveal that verapamil orchestrates a broad spectrum of gene and protein expressions pivotal for β-cell survival and adaptation to immune-metabolic challenges. In vivo validation in a zebrafish larvae model confirms verapamil’s efficacy in fostering β-cell recovery post-metronidazole infliction. Collectively, our findings advocate for verapamil’s reevaluation as a multifaceted agent in diabetes therapy, highlighting its novel function in CCK upregulation alongside enhancing β-cell proliferation, glucose sensing, and oxidative respiration. This research enriches the therapeutic landscape, proposing verapamil not only as a cytoprotector but also as a promoter of β-cell regeneration, thereby offering fresh avenues for diabetes management strategies aimed at preserving and augmenting β-cell functionality.

Funder

Kuwait Foundation for the Advancement of Sciences

Publisher

MDPI AG

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