Glucose intolerance in monosodium glutamate obesity is linked to hyperglucagonemia and insulin resistance in α cells.
Thiago R AraujoJoel A da SilvaJean F VettorazziIsraelle N FreitasCamila LubaczeuskiEmily A MagalhãesJuliana N SilvaElane S RibeiroAntonio C BoscheroEverardo M CarneiroMaria L BonfleurRosane Aparecida RibeiroPublished in: Journal of cellular physiology (2018)
Obesity predisposes to glucose intolerance and type 2 diabetes (T2D). This disease is often characterized by insulin resistance, changes in insulin clearance, and β-cell dysfunction. However, studies indicate that, for T2D development, disruptions in glucagon physiology also occur. Herein, we investigated the involvement of glucagon in impaired glycemia control in monosodium glutamate (MSG)-obese mice. Male Swiss mice were subcutaneously injected daily, during the first 5 days after birth, with MSG (4 mg/g body weight [BW]) or saline (1.25 mg/g BW). At 90 days of age, MSG-obese mice were hyperglycemic, hyperinsulinemic, and hyperglucagonemic and had lost the capacity to increase their insulin/glucagon ratio when transitioning from the fasting to fed state, exacerbating hepatic glucose output. Furthermore, hepatic protein expressions of phosphorylated (p)-protein kinase A (PKA) and cAMP response element-binding protein (pCREB), and of phosphoenolpyruvate carboxykinase (PEPCK) enzyme were higher in fed MSG, before and after glucagon stimulation. Increased pPKA and phosphorylated hormone-sensitive lipase content were also observed in white fat of MSG. MSG islets hypersecreted glucagon in response to 11.1 and 0.5 mmol/L glucose, a phenomenon that persisted in the presence of insulin. Additionally, MSG α cells were hypertrophic displaying increased α-cell mass and immunoreactivity to phosphorylated mammalian target of rapamycin (pmTOR) protein. Therefore, severe glucose intolerance in MSG-obese mice was associated with increased hepatic glucose output, in association with hyperglucagonemia, caused by the refractory actions of glucose and insulin in α cells and via an effect that may be due to enhanced mTOR activation.
Keyphrases
- type diabetes
- insulin resistance
- blood glucose
- glycemic control
- induced apoptosis
- binding protein
- high fat diet induced
- metabolic syndrome
- cell cycle arrest
- adipose tissue
- body weight
- cardiovascular disease
- protein kinase
- endoplasmic reticulum stress
- high fat diet
- single cell
- stem cells
- physical activity
- signaling pathway
- cell therapy
- wild type
- amino acid