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Next-generation Akt inhibitors provide greater specificity: effects on glucose metabolism in adipocytes
Shixiong Tan1, Yvonne Ng, David E James
1Diabetes and Obesity Research Program, The Garvan Institute of Medical Research, 384 Victoria St, Darlinghurst, Sydney, NSW 2010, Australia.
Abstract:
Many human tumours exhibit activation of the PI3K (phosphoinositide 3-kinase)/Akt pathway, and inhibition of this pathway slows tumour growth. This led to the development of specific Akt inhibitors for in vivo use. However, activation of Akt is also necessary for processes including glucose metabolism. Therefore a potential complication of such anticancer drugs is insulin resistance and/or diabetes. In the process of characterizing the metabolic effects of early-phase Akt inhibitors, we discovered an off-target inhibitory effect on mammalian facilitative glucose transporters. In view of the crucial role of glucose transport for all mammalian cells, such an off-target effect would have major implications for further development of this family of compounds. In the present study, we have characterized a next-generation Akt inhibitor, MK-2206. MK-2206 is an orally active allosteric Akt inhibitor under development for treating solid tumours. We report that MK-2206 potently inhibits Thr308Akt and Ser473Akt phosphorylation in 3T3-L1 adipocytes (IC50 0.11 and 0.18 μM respectively) as well as downstream effects of insulin on GLUT4 (glucose transporter 4) translocation (IC50 0.47 μM) and glucose transport (IC50 0.14 μM). Notably, the potency of MK-2206 is approximately 1 log higher than previous inhibitors and its specificity is significantly improved with modest inhibitory effects on glucose transport in GLUT4-expressing adipocytes and GLUT1-rich human erythrocytes, independently of Akt. Nevertheless, MK-2206 clearly has potent effects on Akt2, the principal isoform involved in peripheral insulin action, in which case insulin resistance will probably be a major complication following in vivo administration. We conclude that MK-2206 provides an optimal tool for studying the effects of Akt in vitro.
Insights
The new Akt inhibitor MK-2206 shows potent effects on Akt and glucose transport, but may cause insulin resistance. This compound is a valuable tool for studying Akt in vitro.
Area of Science:
- Oncology
- Pharmacology
- Metabolism
Background:
- The PI3K/Akt pathway is often activated in human tumors, making it a target for cancer therapy.
- Akt activation is also crucial for glucose metabolism, raising concerns about potential side effects like insulin resistance with Akt inhibitors.
- Early Akt inhibitors showed off-target effects on glucose transporters, impacting their therapeutic development.
Purpose of the Study:
- To characterize the next-generation Akt inhibitor MK-2206.
- To evaluate the specificity and potency of MK-2206, particularly its effects on Akt phosphorylation and glucose transport.
- To assess the potential for MK-2206 to cause insulin resistance.
Main Methods:
- MK-2206 was tested in 3T3-L1 adipocytes to measure its inhibition of Akt phosphorylation.
- The study assessed MK-2206's effects on insulin-stimulated glucose transporter 4 (GLUT4) translocation and glucose transport.
- The compound's inhibitory effects on glucose transport in adipocytes and human erythrocytes were evaluated.
Main Results:
- MK-2206 potently inhibited Akt phosphorylation at Thr308 and Ser473 (IC50s 0.11 and 0.18 μM, respectively).
- MK-2206 effectively inhibited downstream insulin effects on GLUT4 translocation and glucose transport (IC50s 0.47 and 0.14 μM, respectively).
- MK-2206 demonstrated improved specificity compared to earlier inhibitors, with modest effects on glucose transport independent of Akt.
Conclusions:
- MK-2206 is a potent and specific Akt inhibitor with significant effects on glucose transport.
- Despite improved specificity, MK-2206's potent inhibition of Akt2 suggests insulin resistance is a likely complication in vivo.
- MK-2206 serves as an optimal tool for in vitro studies of Akt signaling and its metabolic consequences.
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