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Published on: May 15, 2019
C-terminal binding protein 2 is a novel tumor suppressor targeting the MYC-IRF4 axis in multiple myeloma
Coty Hing Yau Cheung1, Chi Keung Cheng1, Kam Tong Leung2
1Blood Cancer Cytogenetics and Genomics Laboratory, Department of Anatomical and Cellular Pathology, Prince of Wales Hospital, The Chinese University of Hong Kong, Hong Kong SAR, China.
Abstract:
Multiple myeloma (MM) cells are addicted to MYC and its direct transactivation targets IRF4 for proliferation and survival. MYC and IRF4 are still considered "undruggable," as most small-molecule inhibitors suffer from low potency, suboptimal pharmacokinetic properties, and undesirable off-target effects. Indirect inhibition of MYC/IRF4 emerges as a therapeutic vulnerability in MM. Here, we uncovered an unappreciated tumor-suppressive role of C-terminal binding protein 2 (CTBP2) in MM via strong inhibition of the MYC-IRF4 axis. In contrast to epithelial cancers, CTBP2 is frequently downregulated in MM, in association with shortened survival, hyperproliferative features, and adverse clinical outcomes. Restoration of CTBP2 exhibited potent antitumor effects against MM in vitro and in vivo, with marked repression of the MYC-IRF4 network genes. Mechanistically, CTBP2 impeded the transcription of MYC and IRF4 by histone H3 lysine 27 deacetylation (H3K27ac) and indirectly via activation of the MYC repressor IFIT3. In addition, activation of the interferon gene signature by CTBP2 suggested its concomitant immunomodulatory role in MM. Epigenetic studies have revealed the contribution of polycomb-mediated silencing and DNA methylation to CTBP2 inactivation in MM. Notably, inhibitors of Enhance of zeste homolog 2, histone deacetylase, and DNA methyltransferase, currently under evaluation in clinical trials, were effective in restoring CTBP2 expression in MM. Our findings indicated that the loss of CTBP2 plays an essential role in myelomagenesis and deciphers an additional mechanistic link to MYC-IRF4 dysregulation in MM. We envision that the identification of novel critical regulators will facilitate the development of selective and effective approaches for treating this MYC/IRF4-addicted malignancy.
Insights
C-terminal binding protein 2 (CTBP2) acts as a tumor suppressor in multiple myeloma by inhibiting the MYC-IRF4 axis. Restoring CTBP2 shows potent anti-myeloma effects and offers a new therapeutic strategy for this MYC/IRF4-addicted cancer.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Multiple myeloma (MM) cells depend on MYC and IRF4 for survival, but these are considered undruggable targets.
- Current therapeutic strategies for MM face challenges due to low potency and off-target effects of small-molecule inhibitors.
Purpose of the Study:
- To investigate the role of C-terminal binding protein 2 (CTBP2) in multiple myeloma.
- To explore CTBP2 as a potential therapeutic target for inhibiting the MYC-IRF4 axis in MM.
Main Methods:
- Investigated CTBP2 expression levels in MM patient samples and correlated them with clinical outcomes.
- Utilized in vitro and in vivo models to assess the anti-myeloma effects of CTBP2 restoration.
- Examined the molecular mechanisms of CTBP2 action, including epigenetic modifications (H3K27ac) and regulation of MYC, IRF4, and IFIT3.
- Assessed the efficacy of epigenetic drugs in restoring CTBP2 expression.
Main Results:
- CTBP2 is frequently downregulated in MM, associated with poor survival and hyperproliferation.
- Restoration of CTBP2 demonstrated significant anti-tumor activity against MM cells in vitro and in vivo.
- CTBP2 inhibits MYC and IRF4 transcription via H3K27 deacetylation and activation of the repressor IFIT3.
- Epigenetic modifiers (EZH2, HDAC, DNMT inhibitors) effectively restored CTBP2 expression in MM.
Conclusions:
- Loss of CTBP2 is crucial in multiple myeloma development and linked to MYC-IRF4 dysregulation.
- CTBP2 acts as a tumor suppressor by inhibiting the MYC-IRF4 axis and possesses immunomodulatory functions.
- Targeting CTBP2, potentially through epigenetic therapies, represents a promising strategy for treating MYC/IRF4-addicted multiple myeloma.
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