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.

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.

Related Concept Videos

Glucose Homeostasis: Pancreatic Islets and Insulin Secretion01:27

Glucose Homeostasis: Pancreatic Islets and Insulin Secretion

The pancreatic islets comprising only 1%-2% of the volume are highly vascularized and innervated mini-organs. They contain five endocrine cell types, including β cells that secrete insulin, which is synthesized as a single polypeptide chain, preproinsulin, processed to proinsulin, and finally to insulin and C-peptide. This process is complex and regulated, involving the Golgi complex, the endoplasmic reticulum, and the secretory granules of the β cell.
Insulin and C-peptide are co-secreted in...
Cells and Secretions of the Pancreas01:16

Cells and Secretions of the Pancreas

The pancreas, a vital organ within the abdominal cavity, plays dual roles in the digestive and endocrine systems, collaborating with exocrine and endocrine cells to maintain optimal digestion and blood sugar levels.
Exocrine function is carried out by acinar cells, organized into clusters known as acini. These cells contribute to digestion by releasing substantial quantities of enzyme-rich, alkaline digestive juices.
Concurrently, the dispersed clusters of endocrine cells throughout the...
Insulin: The Receptor and Signaling Pathways01:28

Insulin: The Receptor and Signaling Pathways

Insulin action is mediated through a receptor tyrosine kinase, akin to the IGF-1 receptor. The number of receptors per cell varies significantly, from 40 on erythrocytes to 300,000 on adipocytes and hepatocytes. The insulin receptor consists of linked α/β subunit dimers, forming a heterotetramer glycoprotein with two extracellular α subunits and two β subunits spanning the membrane. The α subunits inhibit the inherent tyrosine kinase activity of the β subunits, but this inhibition is released...
Hormones Regulating Blood Glucose01:16

Hormones Regulating Blood Glucose

Insulin is released by beta cells of the pancreas when blood glucose levels are high. It facilitates glucose absorption and utilization in insulin-dependent cells with insulin receptors on their plasma membranes. Insulin promotes glucose uptake by increasing the number of glucose transport proteins in the cell membrane, allowing glucose to enter the cell. As a result, glucose utilization and ATP production are enhanced.
In addition to accelerating glucose uptake and utilization, insulin has...
TGF - β Signaling Pathway01:16

TGF - β Signaling Pathway

The TGF-β signaling pathway regulates cell growth, differentiation, adhesion, motility, and development. TGF-β ligands that induce TGF-β signaling are synthesized in their latent form. Several proteases or cell surface receptors such as integrins act upon the latent form, releasing the active ligand. There are three types of mammalian TGF-βs: (TGF-β1, TGF-β2, and TGF-β3) that bind as homodimers or heterodimers to TGF-β receptors. The TGF-β receptors are of three kinds RI, RII, and RIII. The RI...
Glucagon-like Receptor Agonists01:24

Glucagon-like Receptor Agonists

Incretins include glucagon-like peptide-1 (GLP-1) and glucose-dependent insulinotropic polypeptide (GIP), which stimulate insulin secretion post-meals. In type 2 diabetes, GIP's efficacy is reduced, making GLP-1 a viable drug target. GIP originates from preproGIP.
GLP-1, when administered in high doses intravenously, triggers insulin secretion, inhibits glucagon release, slows gastric emptying, reduces food intake, and restores normal insulin secretion. However, its rapid inactivation by the...