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Cavβ3 Regulates Ca2+ Signaling and Insulin Expression in Pancreatic β-Cells in a Cell-Autonomous Manner
Alexander Becker1, Barbara Wardas1, Houssein Salah1
1Institut für Experimentelle und Klinische Pharmakologie und Toxikologie, Präklinisches Zentrum für Molekulare Signalverarbeitung der Universität des Saarlandes, Homburg, Germany.
Abstract:
Voltage-gated Ca2+ (Cav) channels consist of a pore-forming Cavα1 subunit and auxiliary Cavα2-δ and Cavβ subunits. In fibroblasts, Cavβ3, independent of its role as a Cav subunit, reduces the sensitivity to low concentrations of inositol-1,4,5-trisphosphate (IP3). Similarly, Cavβ3 could affect cytosolic calcium concentration ([Ca2 +]) in pancreatic β-cells. In this study, we deleted the Cavβ3-encoding gene Cacnb3 in insulin-secreting rat β-(Ins-1) cells using CRISPR/Cas9. These cells were used as controls to investigate the role of Cavβ3 on Ca2+ signaling, glucose-induced insulin secretion (GIIS), Cav channel activity, and gene expression in wild-type cells in which Cavβ3 and the IP3 receptor were coimmunoprecipitated. Transcript and protein profiling revealed significantly increased levels of insulin transcription factor Mafa, CaMKIV, proprotein convertase subtilisin/kexin type-1, and nitric oxide synthase-1 in Cavβ3-knockout cells. In the absence of Cavβ3, Cav currents were not altered. In contrast, CREB activity, the amount of MAFA protein and GIIS, the extent of IP3-dependent Ca2+ release and the frequency of Ca2+ oscillations were increased. These processes were decreased by the Cavβ3 protein in a concentration-dependent manner. Our study shows that Cavβ3 interacts with the IP3 receptor in isolated β-cells, controls IP3-dependent Ca2+-signaling independently of Cav channel functions, and thereby regulates insulin expression and its glucose-dependent release in a cell-autonomous manner.
Insights
Cavβ3 protein controls calcium signaling and insulin secretion in pancreatic cells. Removing Cavβ3 enhances IP3-dependent calcium release, insulin expression, and glucose-induced insulin secretion.
Area of Science:
- Cellular Biology
- Endocrinology
- Molecular Biology
Background:
- Voltage-gated calcium (Cav) channels are crucial for cellular functions.
- Cavβ3 auxiliary subunit influences cellular calcium (Ca2+) signaling.
- Cavβ3's role in pancreatic beta-cells, particularly concerning inositol-1,4,5-trisphosphate (IP3) signaling, is not fully understood.
Purpose of the Study:
- To investigate the role of Cavβ3 in pancreatic beta-cells.
- To determine Cavβ3's effect on Ca2+ signaling, glucose-induced insulin secretion (GIIS), and gene expression.
- To elucidate the interaction between Cavβ3 and the IP3 receptor.
Main Methods:
- CRISPR/Cas9 gene editing to create Cavβ3-knockout rat insulinoma (Ins-1) cells.
- Co-immunoprecipitation to study Cavβ3 and IP3 receptor interaction.
- Transcript and protein profiling, measurement of Cav currents, CREB activity, and Ca2+ oscillations.
Main Results:
- Cavβ3 knockout cells showed increased levels of Mafa, CaMKIV, PC1, and NOS1.
- Cav currents remained unaltered in Cavβ3-knockout cells.
- Absence of Cavβ3 enhanced CREB activity, MAFA protein levels, GIIS, IP3-dependent Ca2+ release, and Ca2+ oscillation frequency.
Conclusions:
- Cavβ3 interacts with the IP3 receptor in pancreatic beta-cells.
- Cavβ3 regulates IP3-dependent Ca2+ signaling independently of Cav channel function.
- Cavβ3 controls insulin expression and glucose-dependent insulin secretion in a cell-autonomous manner.
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