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Inhibition of AKT promotes FOXO3a-dependent apoptosis in prostate cancer
T P Das1, S Suman1, H Alatassi2
1Department of Urology, University of Louisville, Louisville, KY 40202, USA.
Abstract:
Growth factor-induced activation of protein kinase-B (PKB), also known as AKT, induces pro-survival signaling and inhibits activation of pro-apoptotic signaling molecules including the Forkhead box O-3a (FOXO3a) transcription factor and caspase in transformed prostate cells in vitro. Earlier we reported that Withaferin-A (WA), a small herbal molecule, induces pro-apoptotic response-4 (Par-4) mediated apoptosis in castration-resistant prostate cancer (CRPC) cells. In the present study, we demonstrate that inhibition of AKT facilitates nuclear shuttling of FOXO3a where it regulates Par-4 transcription in CRPC cells. FOXO3a is upstream of Par-4 signaling, which is required for induction of apoptosis in CRPC cells. Promoter bashing studies and Ch-IP analysis confirm a direct interaction of FOXO3a and Par-4; a sequential deletion of FOXO3a-binding sites in the Par-4 promoter fails to induce Par-4 activation. To confirm these observations, we either overexpressed AKT or silenced FOXO3a activation in CRPC cells. Both methods inhibit Par-4 function and apoptosis is significantly compromised. In xenograft tumors derived from AKT-overexpressed CRPC cells, FOXO3a and Par-4 expression is downregulated, leading to aggressive tumor growth. Oral administration of WA to mice with xenograft tumors restores FOXO3a-mediated Par-4 functions and results in inhibited tumor growth. Finally, an inverse correlation of nuclear localization of AKT expression corresponds to cytoplasmic Par-4 localization in human prostate tissue array. Our studies suggest that Par-4 is one of the key transcriptional targets of FOXO3a, and Par-4 activation is required for induction of apoptosis in CRPC cells. Activation of FOXO3a appears to be an attractive target for the treatment of CRPC and molecules such as WA can be explored further for the treatment of CRPC.
Insights
Inhibition of AKT in prostate cancer cells promotes FOXO3a nuclear shuttling, activating Par-4 and inducing apoptosis. Withaferin-A restores this pathway, inhibiting tumor growth in vivo.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Protein kinase-B (AKT) activation promotes survival in prostate cancer by inhibiting pro-apoptotic factors.
- Withaferin-A (WA) induces apoptosis in castration-resistant prostate cancer (CRPC) cells via pro-apoptotic response-4 (Par-4).
Purpose of the Study:
- To elucidate the role of AKT and FOXO3a in regulating Par-4 expression and apoptosis in CRPC.
- To investigate the therapeutic potential of targeting the AKT/FOXO3a/Par-4 axis in CRPC.
Main Methods:
- In vitro studies involving AKT overexpression, FOXO3a silencing, and promoter analysis (promoter bashing, ChIP) in CRPC cells.
- In vivo studies using CRPC xenograft mouse models treated with WA.
- Analysis of human prostate tissue arrays to correlate AKT and Par-4 expression.
Main Results:
- Inhibition of AKT promotes FOXO3a nuclear localization, which directly binds to the Par-4 promoter, inducing its transcription and apoptosis.
- Overexpression of AKT or silencing of FOXO3a inhibits Par-4 function and apoptosis.
- WA treatment in vivo restores FOXO3a/Par-4 signaling and inhibits CRPC xenograft tumor growth.
- Human prostate tissues show an inverse correlation between nuclear AKT and cytoplasmic Par-4.
Conclusions:
- Par-4 is a key transcriptional target of FOXO3a, essential for apoptosis induction in CRPC.
- Targeting FOXO3a activation represents a promising therapeutic strategy for CRPC.
- Herbal molecules like WA warrant further investigation for CRPC treatment.
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