Gsα-dependent signaling is required for postnatal establishment of a functional β-cell mass

Berta Serra-Navarro1, Rebeca Fernandez-Ruiz2, Ainhoa García-Alamán3

  • 1Diabetes and Obesity Research Laboratory, August Pi i Sunyer Biomedical Research Institute (IDIBAPS), Rosselló 149-153, 08036, Barcelona, Spain; University of Barcelona, Barcelona, Spain.

Insights

The Gsα protein is crucial for postnatal beta-cell development, regulating growth and maturation. Its absence impairs glucose homeostasis and insulin signaling, highlighting potential therapeutic targets for diabetes.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Developmental Biology

Background:

  • Postnatal development is critical for establishing functional beta-cell mass for lifelong glucose homeostasis.
  • Cyclic adenosine monophosphate (cAMP) regulates key beta-cell functions, including proliferation and survival.
  • The Gs protein (Gs) activates the cAMP pathway, but its role in early beta-cell development is unclear.

Purpose of the Study:

  • To investigate the role of Gs-dependent signaling in postnatal beta-cell development.
  • To elucidate the impact of Gsα ablation in beta cells on glucose homeostasis and beta-cell function.

Main Methods:

  • Generated conditional knockout mice lacking Gsα in beta cells (Ins1Cre).
  • Assessed glucose homeostasis, beta-cell mass, proliferation, apoptosis, and gene expression.
  • Analyzed cAMP levels, insulin signaling pathways, and in vitro cell proliferation.

Main Results:

  • Gsα deletion in beta cells reduced beta-cell mass, insulin secretion, and caused severe glucose intolerance.
  • Observed decreased proliferation and impaired expression of beta-cell identity genes.
  • Disrupted insulin signaling pathway, abrogating the proliferative response to insulin.

Conclusions:

  • Gsα is essential for postnatal beta-cell growth and maturation.
  • Gsα signaling crosstalks with insulin signaling, impacting beta-cell function.
  • Findings suggest potential for cAMP-based therapies to promote beta-cell regeneration in diabetes.
Abstract

Related Concept Videos

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...
8.2K
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...
1.6K
Insulin Secretory Vesicles01:05

Insulin Secretory Vesicles

Insulin secretory vesicles release insulin to stimulate blood glucose uptake and regulate carbohydrate metabolism. When the blood glucose levels increase, glucose enters the pancreatic β-islet cells through glucose transporters. Once inside, glucose is metabolized through glycolysis, the citric acid cycle, and the electron transport chain, producing ATP. This increase in ATP concentration closes ATP-sensitive potassium channels, leading to depolarization of the membrane and the opening of...
6.1K
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...
5.3K
Cell Specific Gene Expression01:58

Cell Specific Gene Expression

Multicellular organisms contain a variety of structurally and functionally distinct cell types, but the DNA in all the cells originated from the same parent cells. The differences in the cells can be attributed to the differential gene expression. Liver cells, whose functions include detoxification of blood, production of bile to metabolize fats, and synthesis of proteins essential for metabolism, must express a specific set of genes to perform their functions. Gene expression also varies with...
14.4K
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...
1.8K