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SSTR2 is the functionally dominant somatostatin receptor in human pancreatic β- and α-cells
Balrik Kailey1, Martijn van de Bunt, Stephen Cheley
1Oxford Centre for Diabetes, Endocrinology, and Metabolism, University of Oxford, Oxford, United Kingdom.
Abstract:
Somatostatin-14 (SST) inhibits insulin and glucagon secretion by activating G protein-coupled somatostatin receptors (SSTRs), of which five isoforms exist (SSTR1-5). In mice, the effects on pancreatic β-cells are mediated by SSTR5, whereas α-cells express SSTR2. In both cell types, SSTR activation results in membrane hyperpolarization and suppression of exocytosis. Here, we examined the mechanisms by which SST inhibits secretion from human β- and α-cells and the SSTR isoforms mediating these effects. Quantitative PCR revealed high expression of SSTR2, with lower levels of SSTR1, SSTR3, and SSTR5, in human islets. Immunohistochemistry showed expression of SSTR2 in both β- and α-cells. SST application hyperpolarized human β-cells and inhibited action potential firing. The membrane hyperpolarization was unaffected by tolbutamide but antagonized by tertiapin-Q, a blocker of G protein-gated inwardly rectifying K⁺ channels (GIRK). The effect of SST was mimicked by an SSTR2-selective agonist, whereas a SSTR5 agonist was marginally effective. SST strongly (>70%) reduced depolarization-evoked exocytosis in both β- and α-cells. A slightly weaker inhibition was observed in both cell types after SSTR2 activation. SSTR3- and SSTR1-selective agonists moderately reduced the exocytotic responses in β- and α-cells, respectively, whereas SSTR4- and SSTR5-specific agonists were ineffective. SST also reduced voltage-gated P/Q-type Ca²⁺ currents in β-cells, but normalization of Ca²⁺ influx to control levels by prolonged depolarizations only partially restored exocytosis. We conclude that SST inhibits secretion from both human β- and α-cells by activating GIRK and suppressing electrical activity, reducing P/Q-type Ca²⁺ currents, and directly inhibiting exocytosis. These effects are mediated predominantly by SSTR2 in both cell types.
Insights
Somatostatin-14 (SST) inhibits human insulin and glucagon secretion by activating somatostatin receptors (SSTRs), primarily SSTR2. This action involves GIRK channel activation, reduced electrical activity, and direct exocytosis suppression in pancreatic cells.
Area of Science:
- Endocrinology
- Cell Biology
- Molecular Pharmacology
Background:
- Somatostatin-14 (SST) regulates insulin and glucagon secretion via G protein-coupled somatostatin receptors (SSTRs).
- In mice, SSTR5 mediates effects on β-cells and SSTR2 on α-cells, both leading to hyperpolarization and suppressed exocytosis.
- Understanding these mechanisms in human pancreatic cells is crucial for metabolic research.
Purpose of the Study:
- To investigate the mechanisms of SST-induced inhibition of secretion in human pancreatic β- and α-cells.
- To identify the specific SSTR isoforms responsible for mediating SST's effects in human islets.
- To elucidate the downstream signaling pathways involved in SST's inhibitory actions.
Main Methods:
- Quantitative PCR and immunohistochemistry to determine SSTR expression in human islets and cells.
- Electrophysiological recordings to assess membrane potential changes and ion channel activity (GIRK, Ca2+ currents).
- Application of SST and selective SSTR agonists/antagonists to measure effects on depolarization-evoked exocytosis.
Main Results:
- Human islets express high levels of SSTR2, with lower expression of SSTR1, SSTR3, and SSTR5.
- SST application hyperpolarized human β-cells, inhibited action potential firing, and reduced depolarization-evoked exocytosis (>70%).
- SSTR2 activation mimicked SST effects, while SSTR5 was marginally effective; SSTR2 predominantly mediated SST's inhibitory actions on both β- and α-cells.
Conclusions:
- SST inhibits human β- and α-cell secretion primarily through SSTR2 activation.
- Mechanisms include GIRK channel activation, suppressed electrical activity, reduced P/Q-type Ca2+ currents, and direct inhibition of exocytosis.
- SSTR2 is the key mediator of SST's inhibitory effects on human pancreatic endocrine secretion.
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