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Dominant-Negative ATF5 Compromises Cancer Cell Survival by Targeting CEBPB and CEBPD
Xiaotian Sun1, Parvaneh Jefferson1, Qing Zhou1
1Department of Pathology and Cell Biology, Columbia University, New York, New York.
Abstract:
The basic leucine zipper transcription factor ATF5 is overexpressed in many tumor types and interference with its expression or function inhibits cancer cell survival. As a potential therapeutic approach to exploit these findings, we created dominant-negative (DN) ATF5 forms lacking DNA-binding ability that retain the ATF5 leucine zipper, and thus associate with and sequester ATF5's requisite leucine zipper-binding partners. Preclinical studies with DN-ATF5, including a cell-penetrating form, show in vitro and in vivo efficacy in compromising cancer cell survival. However, DN-ATF5's targets, and particularly those required for tumor cell survival, have been unknown. We report that cells lacking ATF5 succumb to DN-ATF5, indicating that ATF5 itself is not DN-ATF5's obligate target. Unbiased pull-down assays coupled with mass spectrometry and immunoblotting revealed that DN-ATF5 associates in cells with the basic leucine zipper proteins CEBPB and CEBPD and coiled-coil protein CCDC6. Consistent with DN-ATF5 affecting tumor cell survival by suppressing CEBPB and CEBPD function, DN-ATF5 interferes with CEBPB and CEBPD transcriptional activity, while CEBPB or CEBPD knockdown promotes apoptotic death of multiple cancer cells lines, but not of normal astrocytes. We propose a two-pronged mechanism by which DN-ATF5 kills tumor cells. One is by inhibiting heterodimer formation between ATF5 and CEBPB and CDBPD, thus suppressing ATF5-dependent transcription. The other is by blocking the formation of transcriptionally active CEBPB and CEBPD homodimers as well as heterodimers with partners in addition to ATF5. IMPLICATIONS: This study indicates that the potential cancer therapeutic DN-ATF5 acts by associating with and blocking the transcriptional activities of CEBPB and CEBPD.
Insights
Dominant-negative ATF5 (DN-ATF5) targets CEBPB and CEBPD, crucial for cancer cell survival. DN-ATF5 inhibits their transcriptional activity, offering a novel cancer therapy strategy.
Area of Science:
- Molecular Biology
- Cancer Research
- Transcription Factor Regulation
Background:
- The transcription factor ATF5 is overexpressed in many cancers and is essential for cancer cell survival.
- Dominant-negative (DN) ATF5 variants have shown preclinical efficacy in inhibiting cancer cell survival.
Purpose of the Study:
- To identify the specific targets of DN-ATF5 responsible for its anti-cancer effects.
- To elucidate the mechanism by which DN-ATF5 compromises cancer cell survival.
Main Methods:
- Unbiased pull-down assays with mass spectrometry and immunoblotting to identify DN-ATF5 interacting proteins.
- Assessment of DN-ATF5's effect on the transcriptional activity of identified targets.
- Knockdown studies of target genes (CEBPB, CEBPD) in cancer cell lines and normal astrocytes.
Main Results:
- DN-ATF5 interacts with basic leucine zipper proteins CEBPB and CEBPD, and CCDC6.
- DN-ATF5 suppresses the transcriptional activity of CEBPB and CEBPD.
- Knockdown of CEBPB or CEBPD induces apoptosis in cancer cells but not normal astrocytes.
Conclusions:
- DN-ATF5 exerts its anti-cancer effects by inhibiting the transcriptional activity of CEBPB and CEBPD.
- DN-ATF5 acts via a two-pronged mechanism: inhibiting ATF5/CEBPB/CEBPD heterodimers and blocking CEBPB/CEBPD homodimers/heterodimers.
- DN-ATF5 represents a promising therapeutic strategy targeting CEBPB and CEBPD in cancer treatment.
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