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Unraveling Verapamil's Multidimensional Role in Diabetes Therapy: From ß-Cell Regeneration to Cholecystokinin Induction in Zebrafish and MIN6 Cell-Line Models.
Arefanian, Hossein; Al Madhoun, Ashraf; Al-Rashed, Fatema; Alzaid, Fawaz; Bahman, Fatemah; Nizam, Rasheeba; Alhusayan, Mohammed; John, Sumi; Jacob, Sindhu; Williams, Michayla R; Abukhalaf, Nermeen; Shenouda, Steve; Joseph, Shibu; AlSaeed, Halemah; Kochumon, Shihab; Mohammad, Anwar; Koti, Lubaina; Sindhu, Sardar; Abu-Farha, Mohamed; Abubaker, Jehad; Thanaraj, Thangavel Alphonse; Ahmad, Rasheed; Al-Mulla, Fahd.
Afiliación
  • Arefanian H; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Al Madhoun A; Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Al-Rashed F; Animal and Imaging Core Facility, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Alzaid F; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Bahman F; Department of Bioenergetics & Neurometabolism, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Nizam R; 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.
  • Alhusayan M; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • John S; Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Jacob S; Department of Bioenergetics & Neurometabolism, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Williams MR; Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Abukhalaf N; Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Shenouda S; Department of Bioenergetics & Neurometabolism, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Joseph S; Animal and Imaging Core Facility, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • AlSaeed H; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Kochumon S; Special Services Facilities, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Mohammad A; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Koti L; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Sindhu S; Department of Biochemistry and Molecular Biology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Abu-Farha M; Department of Genetics and Bioinformatics, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Abubaker J; Department of Immunology & Microbiology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Thanaraj TA; Animal and Imaging Core Facility, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Ahmad R; Department of Biochemistry and Molecular Biology, Dasman Diabetes Institute, Dasman 15462, Kuwait.
  • Al-Mulla F; Department of Translational Research, Dasman Diabetes Institute, Dasman 15462, Kuwait.
Cells ; 13(11)2024 May 30.
Article en En | MEDLINE | ID: mdl-38891081
ABSTRACT
This study unveils verapamil's compelling cytoprotective and proliferative effects on pancreatic ß-cells amidst diabetic stressors, spotlighting its unforeseen role in augmenting cholecystokinin (CCK) expression. Through rigorous investigations employing MIN6 ß-cells and zebrafish models under type 1 and type 2 diabetic conditions, we demonstrate verapamil's capacity to significantly boost ß-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 ß-cell survival and adaptation to immune-metabolic challenges. In vivo validation in a zebrafish larvae model confirms verapamil's efficacy in fostering ß-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 ß-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 ß-cell regeneration, thereby offering fresh avenues for diabetes management strategies aimed at preserving and augmenting ß-cell functionality.
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Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Pez Cebra / Colecistoquinina / Verapamilo / Células Secretoras de Insulina Límite: Animals Idioma: En Año: 2024 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Pez Cebra / Colecistoquinina / Verapamilo / Células Secretoras de Insulina Límite: Animals Idioma: En Año: 2024 Tipo del documento: Article