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The deubiquitylase Ataxin-3 restricts PTEN transcription in lung cancer cells
J J Sacco1, T Y Yau1, S Darling1
1Cellular and Molecular Physiology, Institute of Translational Medicine, University of Liverpool, Liverpool, UK.
Abstract:
The phosphatidylinositol-3-kinase (PI3K) pathway is commonly hyperactivated in cancer. One mechanism by which this occurs is by silencing of the phosphatase and tensin homolog (PTEN), a tumor suppressor and major antagonist of the pathway, through genetic, epigenetic or posttranscriptional mechanisms. Here, we used an unbiased siRNA screen in non-small-cell lung cancer cells to identify deubiquitylases (DUBs) that have an impact on PI3K signaling by regulating the abundance of PTEN. We found that PTEN expression was induced by depleting any of three members of the Josephin family DUBs: ataxin 3 (ATXN3), ataxin 3-like (ATXN3L) and Josephin domain containing 1 (JOSD1). However, this effect is not mediated through altered PTEN protein stability. Instead, depletion of each DUB increases expression of both the PTEN transcript and its competing endogenous RNA, PTENP1. In ATXN3-depleted cells, under conditions of transcriptional inhibition, PTEN and PTENP1 mRNAs rapidly decay, suggesting that ATXN3 acts primarily by repressing their transcription. Importantly, the PTEN induction observed in response to ATXN3 siRNA is sufficient to downregulate Akt phosphorylation and hence PI3K signaling. Histone deacetylase inhibitors (HDACi) have been suggested as potential mediators of PTEN transcriptional reactivation in non-small-cell lung cancer. Although PTEN exhibits a very limited response to the broad-spectrum HDACi Vorinostat (SAHA) in A549 cells, we find that combination with ATXN3 depletion enhances PTEN induction in an additive manner. Similarly, these interventions additively decrease cell viability. Thus, ATXN3 provides an autonomous, complementary therapeutic target in cancers with epigenetic downregulation of PTEN.
Insights
Researchers identified deubiquitylases (DUBs) that regulate phosphatase and tensin homolog (PTEN) expression in cancer. Depleting Josephin family DUBs, like ataxin 3 (ATXN3), increases PTEN levels and inhibits cancer signaling pathways.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The phosphatidylinositol-3-kinase (PI3K) pathway is frequently hyperactivated in cancer.
- Silencing of the tumor suppressor phosphatase and tensin homolog (PTEN) contributes to PI3K pathway activation.
- PTEN can be silenced through genetic, epigenetic, or posttranscriptional mechanisms.
Purpose of the Study:
- To identify deubiquitylases (DUBs) impacting PI3K signaling by regulating PTEN abundance using an unbiased siRNA screen.
- To investigate the mechanism by which DUBs affect PTEN expression.
- To explore the therapeutic potential of targeting DUBs in combination with existing treatments.
Main Methods:
- Unbiased siRNA screen in non-small-cell lung cancer cells.
- Analysis of PTEN transcript and protein levels upon DUB depletion.
- Assessment of mRNA decay rates under transcriptional inhibition.
- Combination therapy studies with histone deacetylase inhibitors (HDACi).
Main Results:
- Depletion of Josephin family DUBs (ATXN3, ATXN3L, JOSD1) induced PTEN expression.
- PTEN induction was not due to altered protein stability but increased PTEN transcript and PTENP1 levels.
- ATXN3 depletion repressed PTEN and PTENP1 transcription, leading to PI3K pathway downregulation.
- Combining ATXN3 depletion with HDAC inhibitors additively enhanced PTEN induction and decreased cell viability.
Conclusions:
- Specific DUBs, particularly ATXN3, play a critical role in repressing PTEN transcription.
- Targeting ATXN3 offers a novel therapeutic strategy for cancers with epigenetically silenced PTEN.
- Combination therapy of ATXN3 depletion with HDAC inhibitors shows promise for enhancing anti-cancer effects.
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