Kalirin/Trio Rho GDP/GTP exchange factors regulate proinsulin and insulin secretion

Author:

Dufurrena Quinn1,Bäck Nils2,Mains Richard3,Hodgson Louis4,Tanowitz Herbert5,Mandela Prashant6,Eipper Betty7,Kuliawat Regina8

Affiliation:

1. 1Department of Medicine, Stony Brook University School of Medicine, Stony Brook, New York, USA

2. 2Department of Anatomy, Faculty of Medicine, University of Helsinki, Helsinki, Finland

3. 3Department of Neuroscience, University of Connecticut Health Center, Farmington, Connecticut, USA

4. 4Department of Anatomy and Structural Biology, Albert Einstein College of Medicine, Bronx, New York, USA

5. 5Departments of Pathology, Medicine, Albert Einstein College of Medicine, Bronx, New York, USA

6. 6School of Pharmacy, University of Saint Joseph, Hartford, Connecticut, USA

7. 7Department of Molecular Biology and Biophysics, University of Connecticut Health Center, Farmington, Connecticut, USA

8. 8Developmental and Molecular Biology, Albert Einstein College of Medicine, Bronx, New York, USA

Abstract

Key features for progression to pancreatic β-cell failure and disease are loss of glucose responsiveness and an increased ratio of secreted proinsulin to insulin. Proinsulin and insulin are stored in secretory granules (SGs) and the fine-tuning of hormone output requires signal-mediated recruitment of select SG populations according to intracellular location and age. The GTPase Rac1 coordinates multiple signaling pathways that specify SG release, and Rac1 activity is controlled in part by GDP/GTP exchange factors (GEFs). To explore the function of two large multidomain GEFs, Kalirin and Trio in β-cells, we manipulated their Rac1-specific GEF1 domain activity by using small-molecule inhibitors and by genetically ablating Kalirin. We examined age-related SG behavior employing radiolabeling protocols. Loss of Kalirin/Trio function attenuated radioactive proinsulin release by reducing constitutive-like secretion and exocytosis of 2-h-old granules. At later chase times or at steady state, Kalirin/Trio manipulations decreased glucose-stimulated insulin output. Finally, use of a Rac1 FRET biosensor with cultured β-cell lines demonstrated that Kalirin/Trio GEF1 activity was required for normal rearrangement of Rac1 to the plasma membrane in response to glucose. Rac1 activation can be evoked by both glucose metabolism and signaling through the incretin glucagon-like peptide 1 (GLP-1) receptor. GLP-1 addition restored Rac1 localization/activity and insulin secretion in the absence of Kalirin, thereby assigning Kalirin’s participation to stimulatory glucose signaling.

Publisher

Bioscientifica

Subject

Endocrinology,Molecular Biology

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