Toll-like receptor agonist induced changes in clonal rat BRIN-BD11 beta-cell insulin secretion and signal

Aoife Kiely1, Aisling Robinson, Neville H McClenaghan

  • 1School of Biomolecular and Biomedical Sciences, Conway Institute and Health Sciences Centre, UCD Dublin, Belfield, Dublin 4, Ireland.

Insights

Lipopolysaccharide (LPS) exposure impairs chronic insulin secretion in beta-cells by altering insulin signaling pathways. However, these negative effects on beta-cells are reversible upon LPS removal.

Area of Science:

  • Endocrinology
  • Immunology
  • Cell Biology

Background:

  • Toll-like receptors (TLRs), activated by lipopolysaccharide (LPS) and fatty acids, are implicated in insulin resistance.
  • Previous studies linked TLRs to altered signaling in adipose, liver, and muscle tissues in obesity and insulin resistance models.

Purpose of the Study:

  • To investigate the specific effects of LPS on beta-cell function, including viability, insulin secretion, signaling, and metabolism.
  • To determine the impact of LPS on insulin receptor signaling pathways in a clonal beta-cell line.

Main Methods:

  • BRIN-BD11 beta-cells were treated with varying concentrations of LPS for 24 hours.
  • Assessed chronic and acute insulin secretion, insulin content, cell metabolism, and insulin signaling markers (IR beta, calcineurin, Akt, IRS-1).
  • Evaluated recovery of insulin secretion after LPS removal.

Main Results:

  • LPS significantly reduced chronic (24h) insulin secretion in a dose-dependent manner.
  • No changes were observed in acute insulin secretion, insulin content, or cell metabolism.
  • LPS increased insulin receptor-beta (IR beta) expression but decreased calcineurin activity and Akt phosphorylation.
  • Reversible effects on chronic insulin secretion were noted upon LPS withdrawal.

Conclusions:

  • LPS negatively impacts beta-cell function, specifically chronic insulin secretion, potentially contributing to hyperglycemia.
  • Altered insulin signaling pathways, including reduced Akt phosphorylation, are involved in LPS-induced beta-cell dysfunction.
  • The observed beta-cell effects of LPS are reversible, suggesting potential therapeutic targets.

Related Concept Videos

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...
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...
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...
Cell Signaling in Plants01:25

Cell Signaling in Plants

Plant cells communicate to coordinate their cycle of growth, flowering and fruiting, and activities in roots, shoots, and leaves in response to the changing environmental conditions. Plant signaling is distinct from animal signaling. Plants primarily utilize enzyme-linked receptors, whereas the largest class of cell-surface receptors in animals are G-protein coupled receptors (GPCRs). Unlike animals, receptor tyrosine kinases are rare in plants. Instead, plants have a diverse class of...
Adrenergic Receptors: β Subtype01:26

Adrenergic Receptors: β Subtype

β-adrenoceptors have varied sensitivities towards adrenaline, noradrenaline, and isoprenaline. The order of agonist potency is as follows:
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors have equal affinities for...