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Published on: November 15, 2013
Biochemical and cellular evidence demonstrating AKT-1 as a binding partner for resveratrol targeting protein NQO2
Tze-chen Hsieh1, Chia-Yi Lin2, Dylan John Bennett1
1Department of Biochemistry and Molecular Biology, New York Medical College, Valhalla, New York, United States of America.
Background:
AKT plays an important role in the control of cell proliferation and survival. Aberrant activation of AKT frequently occurs in human cancers making it an attractive drug targets and leading to the synthesis of numerous AKT inhibitors as therapeutic candidates. Less is known regarding proteins that control AKT. We recently reported that quinone reductase 2 (NQO2) inhibited AKT activity, by unknown mechanisms.
Methodology/Principal Findings:
In this study, molecular modeling was used to query interaction between NQO2 and AKT. We found that pleckstrin homology (PH) and kinase domains of AKT bind to chains A and B of NQO2. Pull-down and deletion assays revealed that PH domain of AKT is essential for interaction with NQO2. Modeling analysis further revealed that kinase domain of AKT binds NQO2 in the vicinity of asparagine 161 located in the resveratrol-binding domain of NQO2. In studies to test whether exposure to resveratrol potentiates or diminishes AKT binding to NQO2, we showed that pre-binding by resveratrol in wild type but not histidine-161 (N161H) mutant NQO2 significantly affected this interaction. To obtain information on interplay between resveratrol and AKT, resveratrol affinity chromatography was performed. AKT binds with high affinity to the column suggesting that it is a target of resveratrol. The half-life of AKT mRNA decreased from ∼4 h in control cells to ∼1 h in NQO2-knockdown cells. The inhibition of AKT by resveratrol was attenuated in NQO2-expressing relative to NQO2-knockdown cells.
Conclusion/Significance:
Both NQO2 and AKT are targets of resveratrol; NQO2:AKT interaction is a novel physiological regulator of AKT activation/function.
Insights
Quinone reductase 2 (NQO2) and AKT are both targeted by resveratrol. Their interaction regulates AKT activation, offering new therapeutic strategies for cancer. This study elucidates the molecular mechanisms behind this novel physiological interaction.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- AKT is crucial for cell survival and proliferation, and its aberrant activation is common in cancers.
- Numerous AKT inhibitors are under development as cancer therapeutics.
- Quinone reductase 2 (NQO2) was previously found to inhibit AKT activity through unknown mechanisms.
Purpose of the Study:
- To elucidate the molecular mechanisms by which NQO2 regulates AKT activity.
- To investigate the interaction between NQO2, AKT, and resveratrol.
Main Methods:
- Molecular modeling to predict NQO2-AKT interactions.
- Pull-down and deletion assays to identify key domains involved in binding.
- Resveratrol affinity chromatography to assess AKT as a resveratrol target.
- Analysis of AKT mRNA half-life in NQO2-knockdown cells.
Main Results:
- The pleckstrin homology (PH) and kinase domains of AKT bind to NQO2, with the PH domain being essential.
- Resveratrol binding to NQO2 affects AKT interaction, suggesting a role for NQO2 in modulating this.
- AKT exhibits high affinity for resveratrol, indicating it is a direct target.
- NQO2 knockdown significantly reduces AKT mRNA half-life, and resveratrol's inhibition of AKT is attenuated in NQO2-expressing cells.
Conclusions:
- Both NQO2 and AKT are direct targets of resveratrol.
- The interaction between NQO2 and AKT represents a novel physiological regulator of AKT activation and function.
- This discovery opens new avenues for targeted cancer therapies by modulating the NQO2-AKT pathway.
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