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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Chronologically modified androgen receptor in recurrent castration-resistant prostate cancer and its therapeutic
Mithila Sawant1,2, Kiran Mahajan1,2,3, Arun Renganathan1,2
1Department of Surgery, Washington University in St. Louis, St. Louis, MO 63110, USA.
Abstract:
Resistance to second-generation androgen receptor (AR) antagonists such as enzalutamide is an inevitable consequence in patients with castration-resistant prostate cancer (CRPC). There are no effective therapeutic options for this recurrent disease. The expression of truncated AR variant 7 (AR-V7) has been suggested to be one mechanism of resistance; however, its low frequency in patients with CRPC does not explain the almost universal acquisition of resistance. We noted that the ability of AR to translocate to nucleus in an enzalutamide-rich environment opens up the possibility of a posttranslational modification in AR that is refractory to enzalutamide binding. Chemical proteomics in enzalutamide-resistant CRPC cells revealed acetylation at Lys609 in the zinc finger DNA binding domain of AR (acK609-AR) that not only allowed AR translocation but also galvanized a distinct global transcription program, conferring enzalutamide insensitivity. Mechanistically, acK609-AR was recruited to the AR and ACK1/TNK2 enhancers, up-regulating their transcription. ACK1 kinase-mediated AR Y267 phosphorylation was a prerequisite for AR K609 acetylation, which spawned positive feedback loops at both the transcriptional and posttranslational level that regenerated and sustained high AR and ACK1 expression. Consistent with these findings, oral and subcutaneous treatment with ACK1 small-molecule inhibitor, (R)-9b, not only curbed AR Y267 phosphorylation and subsequent K609 acetylation but also compromised enzalutamide-resistant CRPC xenograft tumor growth in mice. Overall, these data uncover chronological modification events in AR that allows prostate cancer to evolve through progressive stages to reach the resilient recurrent CRPC stage, opening up a therapeutic vulnerability.
Insights
Androgen receptor (AR) acetylation at Lys609 (acK609-AR) drives enzalutamide resistance in castration-resistant prostate cancer (CRPC) by enabling nuclear translocation and sustaining AR and ACK1 expression. Targeting ACK1 kinase with (R)-9b inhibits this process and reduces tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Resistance to enzalutamide is a major challenge in castration-resistant prostate cancer (CRPC).
- While AR-V7 expression is implicated, it doesn't fully explain universal resistance.
- AR nuclear translocation in enzalutamide-rich environments suggests posttranslational modifications conferring resistance.
Purpose of the Study:
- To investigate novel mechanisms of enzalutamide resistance in CRPC.
- To identify specific posttranslational modifications of the androgen receptor (AR) that confer resistance.
- To explore therapeutic strategies targeting these resistance mechanisms.
Main Methods:
- Chemical proteomics was employed in enzalutamide-resistant CRPC cells.
- AR acetylation at Lys609 (acK609-AR) was identified as a key modification.
- AR Y267 phosphorylation and ACK1 kinase activity were assessed.
- The efficacy of an ACK1 inhibitor ((R)-9b) was evaluated in xenograft models.
Main Results:
- Acetylation at Lys609 (acK609-AR) enables AR nuclear translocation and confers enzalutamide insensitivity.
- acK609-AR recruits to AR and ACK1/TNK2 enhancers, upregulating their transcription.
- ACK1-mediated AR Y267 phosphorylation is essential for K609 acetylation, creating positive feedback loops.
- (R)-9b treatment inhibited AR phosphorylation/acetylation and suppressed enzalutamide-resistant CRPC xenograft growth.
Conclusions:
- Chronological AR modifications, specifically K609 acetylation, drive prostate cancer progression to CRPC.
- This acetylation creates a resilient AR signaling axis refractory to enzalutamide.
- Targeting ACK1 kinase represents a promising therapeutic strategy for overcoming enzalutamide resistance in CRPC.
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