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.
Objective:
Early postnatal life is a critical period for the establishment of the functional β-cell mass that will sustain whole-body glucose homeostasis during the lifetime. β cells are formed from progenitors during embryonic development but undergo significant expansion in quantity and attain functional maturity after birth. The signals and pathways involved in these processes are not fully elucidated. Cyclic adenosine monophosphate (cAMP) is an intracellular signaling molecule that is known to regulate insulin secretion, gene expression, proliferation, and survival of adult β cells. The heterotrimeric G protein Gs stimulates the cAMP-dependent pathway by activating adenylyl cyclase. In this study, we sought to explore the role of Gs-dependent signaling in postnatal β-cell development.
Methods:
To study Gs-dependent signaling, we generated conditional knockout mice in which the α subunit of the Gs protein (Gsα) was ablated from β-cells using the Cre deleter line Ins1Cre. Mice were characterized in terms of glucose homeostasis, including in vivo glucose tolerance, glucose-induced insulin secretion, and insulin sensitivity. β-cell mass was studied using histomorphometric analysis and optical projection tomography. β-cell proliferation was studied by ki67 and phospho-histone H3 immunostatining, and apoptosis was assessed by TUNEL assay. Gene expression was determined in isolated islets and sorted β cells by qPCR. Intracellular cAMP was studied in isolated islets using HTRF-based technology. The activation status of the cAMP and insulin-signaling pathways was determined by immunoblot analysis of the relevant components of these pathways in isolated islets. In vitro proliferation of dissociated islet cells was assessed by BrdU incorporation.
Results:
Elimination of Gsα in β cells led to reduced β-cell mass, deficient insulin secretion, and severe glucose intolerance. These defects were evident by weaning and were associated with decreased proliferation and inadequate expression of key β-cell identity and maturation genes in postnatal β-cells. Additionally, loss of Gsα caused a broad multilevel disruption of the insulin transduction pathway that resulted in the specific abrogation of the islet proliferative response to insulin.
Conclusion:
We conclude that Gsα is required for β-cell growth and maturation in the early postnatal stage and propose that this is partly mediated via its crosstalk with insulin signaling. Our findings disclose a tight connection between these two pathways in postnatal β cells, which may have implications for using cAMP-raising agents to promote β-cell regeneration and maturation in diabetes.
More Related Videos
Related Concept Videos
TGF - β Signaling Pathway
Glucose Homeostasis: Pancreatic Islets and Insulin Secretion
Insulin and C-peptide are...
Insulin Secretory Vesicles
Hormones Regulating Blood Glucose
In addition to accelerating glucose uptake and utilization, insulin has...
Cell Specific Gene Expression
Insulin: The Receptor and Signaling Pathways


