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Master Transcription Factor Reprogramming Unleashes Selective Translation Promoting Castration Resistance and Immune
Sandra Santasusagna1,2, Shijia Zhu3,4, Vijayakumar Jawalagatti1,2
1Department of Urology, Mayo Comprehensive Cancer Center, Rochester, Minnesota.
Abstract:
Signaling rewiring allows tumors to survive therapy. Here we show that the decrease of the master regulator microphthalmia transcription factor (MITF) in lethal prostate cancer unleashes eukaryotic initiation factor 3B (eIF3B)-dependent translation reprogramming of key mRNAs conferring resistance to androgen deprivation therapy (ADT) and promoting immune evasion. Mechanistically, MITF represses through direct promoter binding eIF3B, which in turn regulates the translation of specific mRNAs. Genome-wide eIF3B enhanced cross-linking immunoprecipitation sequencing (eCLIP-seq) showed specialized binding to a UC-rich motif present in subsets of 5' untranslated regions. Indeed, translation of the androgen receptor and major histocompatibility complex I (MHC-I) through this motif is sensitive to eIF3B amount. Notably, pharmacologic targeting of eIF3B-dependent translation in preclinical models sensitizes prostate cancer to ADT and anti-PD-1 therapy. These findings uncover a hidden connection between transcriptional and translational rewiring promoting therapy-refractory lethal prostate cancer and provide a druggable mechanism that may transcend into effective combined therapeutic strategies.
Significance:
Our study shows that specialized eIF3B-dependent translation of specific mRNAs released upon downregulation of the master transcription factor MITF confers castration resistance and immune evasion in lethal prostate cancer. Pharmacologic targeting of this mechanism delays castration resistance and increases immune-checkpoint efficacy. This article is featured in Selected Articles from This Issue, p. 2489.
Insights
In lethal prostate cancer, reduced microphthalmia transcription factor (MITF) allows eIF3B to reprogram translation, driving resistance to androgen deprivation therapy (ADT) and immune evasion. Targeting this pathway sensitizes tumors to ADT and immunotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Tumor cells rewire signaling pathways to survive therapy.
- Lethal prostate cancer exhibits resistance to androgen deprivation therapy (ADT) and immune evasion.
Purpose of the Study:
- To investigate the role of microphthalmia transcription factor (MITF) in prostate cancer therapy resistance.
- To elucidate the mechanism of eIF3B-mediated translation reprogramming in conferring resistance and immune evasion.
Main Methods:
- Direct promoter binding assays to study MITF-eIF3B interaction.
- Genome-wide eIF3B enhanced cross-linking immunoprecipitation sequencing (eCLIP-seq) to identify binding sites.
- Preclinical models to test pharmacologic targeting of eIF3B-dependent translation.
Main Results:
- Downregulation of MITF unleashes eIF3B-dependent translation of key mRNAs.
- eIF3B binds to a UC-rich motif in 5' untranslated regions, regulating translation of androgen receptor and MHC-I.
- Pharmacologic targeting of eIF3B sensitizes prostate cancer to ADT and anti-PD-1 therapy.
Conclusions:
- MITF-eIF3B axis represents a critical link between transcriptional and translational control in therapy-refractory prostate cancer.
- Targeting eIF3B-dependent translation offers a druggable strategy to overcome ADT resistance and enhance immunotherapy efficacy.
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