Related Experiment Video
Updated: Jun 22, 2026

Toxicological Assays for Testing Effects of an Epigenetic Drug on Development, Fecundity and Survivorship of Malaria Mosquitoes
Published on: January 16, 2015
DZNep is a global histone methylation inhibitor that reactivates developmental genes not silenced by DNA methylation
Tina Branscombe Miranda1, Connie C Cortez, Christine B Yoo
1Department of Urology, USC Norris Comprehensive Cancer Center, University of Southern California, 1441 Eastlake Avenue, Los Angeles, CA 90033, USA.
Abstract:
DNA methylation, histone modifications, and nucleosomal occupancy collaborate to cause silencing of tumor-related genes in cancer. The development of drugs that target these processes is therefore important for cancer therapy. Inhibitors of DNA methylation and histone deacetylation have been approved by the Food and Drug Administration for treatment of hematologic malignancies. However, drugs that target other mechanisms still need to be developed. Recently, 3-deazaneplanocin A (DZNep) was reported to selectively inhibit trimethylation of lysine 27 on histone H3 (H3K27me3) and lysine 20 on histone H4 (H4K20me3) as well as reactivate silenced genes in cancer cells. This finding opens the door to the pharmacologic inhibition of histone methylation. We therefore wanted to further study the mechanism of action of DZNep in cancer cells. Western blot analysis shows that DZNep globally inhibits histone methylation and is not selective. Two other drugs, sinefungin and adenosine dialdehyde, have similar effects as DZNep on H3K27me3. Intriguingly, chromatin immunoprecipitation of various histone modifications and microarray analysis show that DZNep acts through a different pathway than 5-aza-2'-deoxycytidine, a DNA methyltransferase inhibitor. These observations give us interesting insight into how chromatin structure affects gene expression. We also determined the kinetics of gene activation to understand if the induced changes were somatically heritable. We found that upon removal of DZNep, gene expression is reduced to its original state. This suggests that there is a homeostatic mechanism that returns the histone modifications to their "ground state" after DZNep treatment. Our data show the strong need for further development of histone methylation inhibitors.
Insights
3-deazaneplanocin A (DZNep) inhibits histone methylation in cancer cells but its effects are not selective. Gene expression changes induced by DZNep are not heritable, highlighting the need for new histone methylation inhibitors.
Area of Science:
- Cancer biology
- Epigenetics
- Pharmacology
Background:
- DNA methylation and histone modifications silence tumor-related genes in cancer.
- Approved drugs target DNA methylation and histone deacetylation, but other mechanisms require new drugs.
- 3-deazaneplanocin A (DZNep) was reported to inhibit specific histone trimethylation and reactivate silenced genes.
Purpose of the Study:
- To investigate the mechanism of action of DZNep in cancer cells.
- To determine if DZNep selectively inhibits histone methylation.
- To understand the reversibility of DZNep-induced gene expression changes.
Main Methods:
- Western blot analysis to assess global histone methylation.
- Chromatin immunoprecipitation (ChIP) for histone modifications.
- Microarray analysis to study gene expression.
- Kinetic analysis of gene activation upon drug removal.
Main Results:
- DZNep globally inhibits histone methylation, demonstrating a lack of selectivity.
- DZNep acts via a different pathway than DNA methyltransferase inhibitors.
- Gene expression changes induced by DZNep are reversible upon drug removal, indicating a return to the "ground state".
Conclusions:
- DZNep's lack of selectivity and the reversibility of its effects necessitate further development of histone methylation inhibitors.
- Understanding chromatin structure's role in gene expression is crucial for cancer therapy.
- New therapeutic strategies targeting histone methylation are needed for effective cancer treatment.
Related Concept Videos
Epigenetic Regulation
X-chromosome...
Epigenetic Regulation
Nucleosome Remodeling
Nucleosome remodeling complex
Eukaryotic cells have specialized enzymes called ATP-dependent nucleosome remodeling enzymes. These enzymes...
Histone Modification
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Histone Modification
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Eukaryotic Transcription Inhibitors
Eukaryotic transcription inhibitors usually contain two distinct domains, a DNA...

