Hyperinsulinemia Induces Insulin Resistance in Dorsal Root Ganglion Neurons
Open Access
- 2 August 2011
- journal article
- other
- Published by The Endocrine Society in Endocrinology
- Vol. 152 (10) , 3638-3647
- https://doi.org/10.1210/en.2011-0029
Abstract
Insulin resistance (IR) is the major feature of metabolic syndrome, including type 2 diabetes. IR studies are mainly focused on peripheral tissues, such as muscle and liver. There is, however, little knowledge about IR in neurons. In this study, we examined whether neurons develop IR in response to hyperinsulinemia. We first examined insulin signaling using adult dorsal root ganglion neurons as a model system. Acute insulin treatment resulted in time- and concentration-dependent activation of the signaling cascade, including phosphorylation of the insulin receptor, Akt, p70S6K, and glycogen synthase kinase-3β. To mimic hyperinsulinemia, cells were pretreated with 20 nm insulin for 24 h and then stimulated with 20 nm insulin for 15 min. Chronic insulin treatment resulted in increased basal Akt phosphorylation. More importantly, acute insulin stimulation after chronic insulin treatment resulted in blunted phosphorylation of Akt, p70S6K, and glycogen synthase kinase-3β. Interestingly, when the cells were treated with phosphatidylinositol 3-kinase pathway inhibitor, but not MAPK pathway inhibitor, chronic insulin treatment did not block acute insulin treatment-induced Akt phosphorylation. Insulin-induced Akt phosphorylation was lower in dorsal root ganglion neurons from BKS-db/db compared with control BKS-db+ mice. This effect was age dependent. Our results suggest that hyperinsulinemia cause IR by disrupting the Akt-mediated pathway. We also demonstrate that hyperinsulinemia increases the mitochondrial fission protein dynamin-related protein 1. Our results suggest a new theory for the etiology of diabetic neuropathy, i.e. that, similar to insulin dependent tissues, neurons develop IR and, in turn, cannot respond to the neurotrophic properties of insulin, resulting in neuronal injury and the development of neuropathy.Keywords
This publication has 58 references indexed in Scilit:
- Increased Tau Phosphorylation and Cleavage in Mouse Models of Type 1 and Type 2 DiabetesEndocrinology, 2009
- Increased basal level of Akt-dependent insulin signaling may be responsible for the development of insulin resistanceAmerican Journal of Physiology-Endocrinology and Metabolism, 2009
- Insulin Is a Stronger Inducer of Insulin Resistance than Hyperglycemia in Mice with Type 1 Diabetes Mellitus (T1DM)Journal of Biological Chemistry, 2009
- Impaired Balance of Mitochondrial Fission and Fusion in Alzheimer's DiseaseJournal of Neuroscience, 2009
- Dyslipidemia-Induced Neuropathy in MiceDiabetes, 2009
- Prolonged Exposure to Insulin Suppresses Mitochondrial Production in Primary HepatocytesJournal of Biological Chemistry, 2009
- Phosphorylation of IRS proteins, insulin action, and insulin resistanceAmerican Journal of Physiology-Endocrinology and Metabolism, 2009
- Oxidative injury and neuropathy in diabetes and impaired glucose toleranceNeurobiology of Disease, 2008
- Mitochondrial dysfunction results from oxidative stress in the skeletal muscle of diet-induced insulin-resistant miceJournal of Clinical Investigation, 2008
- OPA1, encoding a dynamin-related GTPase, is mutated in autosomal dominant optic atrophy linked to chromosome 3q28Nature Genetics, 2000