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Updated: Jun 17, 2026

Live-Cell Förster Resonance Energy Transfer Imaging of Metabolically Regulated Akt Activation Dynamics in HepG2 Cells
Published on: May 23, 2025
Dissecting the mechanism of insulin resistance using a novel heterodimerization strategy to activate Akt
Yvonne Ng1, Georg Ramm, David E James
1Diabetes and Obesity Research Program, The Garvan Institute of Medical Research, Sydney, New South Wales 2010.
Abstract:
Insulin resistance can occur in response to many different external insults, including chronic exposure to insulin itself as well as other agonists such as dexamethasone. It is generally thought that such defects arise due to a defect(s) at an early stage in the insulin signaling cascade. One model suggests that this involves activation of the mammalian target of rapamycin/S6 kinase pathway, which inactivates insulin receptor substrate via Ser/Thr phosphorylation. However, we have recently shown that insulin receptor substrate is not a major node for insulin resistance defects. To explore the mechanism of insulin resistance, we have developed a novel system to activate Akt independently of its upstream effectors as well as other insulin-responsive pathways such as mitogen-activated protein kinase. 3T3-L1 adipocytes were rendered insulin-resistant either with chronic insulin or dexamethasone treatment, but conditional activation of Akt2 stimulated hemagglutinin-tagged glucose transporter 4 translocation to the same extent in these insulin-resistant and control cells. However, addition of insulin to cells in which Akt was conditionally activated resulted in a reversion to the insulin-resistant state, indicating a feedforward inhibitory mechanism activated by insulin itself. This effect was overcome with wortmannin, implicating a role for phosphatidylinositol 3-kinase in this inhibitory process. We conclude that in chronic insulin- and dexamethasone-treated cells, acute activation with insulin itself is required to activate a feedforward inhibitory pathway likely emanating from phosphatidylinositol 3-kinase that converges on a target downstream of Akt to cause insulin resistance.
Insights
Insulin resistance involves a feedforward inhibition pathway, not early signaling defects. This pathway, activated by insulin, converges downstream of Akt, causing resistance.
Area of Science:
- Cell biology
- Metabolic signaling
Background:
- Insulin resistance is often attributed to early defects in insulin signaling pathways.
- The mammalian target of rapamycin/S6 kinase pathway was previously implicated in inactivating insulin receptor substrate.
Purpose of the Study:
- To investigate the precise mechanisms underlying insulin resistance.
- To explore the role of Akt activation in insulin resistance independent of upstream signaling.
Main Methods:
- Developed a novel system for conditional Akt activation in 3T3-L1 adipocytes.
- Induced insulin resistance using chronic insulin or dexamethasone treatment.
- Assessed glucose transporter 4 (GLUT4) translocation and insulin's effect on Akt-activated cells.
Main Results:
- Conditional Akt activation stimulated GLUT4 translocation similarly in insulin-resistant and control cells.
- Subsequent insulin addition to Akt-activated cells induced insulin resistance, suggesting a feedforward inhibition.
- Wortmannin treatment blocked this inhibitory effect, implicating phosphatidylinositol 3-kinase (PI3K).
Conclusions:
- Insulin resistance induced by chronic insulin or dexamethasone involves a PI3K-dependent feedforward inhibitory pathway.
- This pathway converges downstream of Akt, rather than at early signaling steps.
- Insulin itself activates this inhibitory mechanism, contributing to the insulin-resistant state.
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