EZH2 Regulates Protein Stability via Recruiting USP7 to Mediate Neuronal Gene Expression in Cancer Cells
Anhua Lei1, Lu Chen1, Min Zhang1
1China's Ministry of Education, Key Laboratory of Model Animals for Disease Study, Model Animal Research Center of Nanjing University, Nanjing, China.
Abstract:
Misexpression of chromatin modification factors and changed epigenetic modifications play crucial roles for tumorigenesis. Our previous studies demonstrated that inhibition of epigenetic modification enzymes EZH2, LSD1, DNMTs, and HDACs caused post-mitotic neuron-like differentiation in different cancer cells. However, how they regulate neuronal differentiation in cancer cells was unknown. Here, we show that EZH2, LSD1, DNMT1, and HDAC1 form interactions themselves, meanwhile, they also interact with SMAD proteins and β-CATENIN in cancer cells. Chemical inhibition of these enzymes leads to reduced level of proteins except HDAC1. The change in protein level and/or enzymatic activities further result in changed chromatin modifications on neuronal gene promoters, and activation of neuronal genes. Inhibition of these enzymes in neural progenitor cells (NPCs) also caused neuronal differentiation, similar to cancer cells. Particularly, EZH2 interacts with and required for the stability of LSD1, HDAC1, DNMT1, β-CATENIN, or SMAD2/4, via recruitment of deubiquitinase USP7. Reduced EZH2 leads to enhanced ubiquitination and degradation of these proteins, and decreased binding of LSD1, HDAC1, and DNMT1 to neuronal gene promoters, and lessened Wnt and TGFβ target gene activation. Hence, EZH2 sustains a series of proteins that promote tumorigenesis, in addition to its original function of histone methylation. Considering together with other studies, we conclude that these chromatin modification factors function in the same way in cancer cells as in neural progenitor/stem cells. The similarity between cancer cells and neural progenitor/stem cells provides an insight into the essence and unified framework for cancer initiation and progression, and are suggestive for novel strategies of cancer therapy.
Insights
Epigenetic regulators like EZH2, LSD1, DNMTs, and HDACs drive cancer by maintaining protein stability. Inhibiting these factors triggers cancer cell neuronal differentiation, similar to neural progenitor cells, suggesting unified cancer mechanisms.
Area of Science:
- Cancer Biology
- Epigenetics
- Neuroscience
Background:
- Aberrant epigenetic modifications are key drivers of tumorigenesis.
- Previous studies showed inhibition of epigenetic enzymes induced neuronal differentiation in cancer cells.
- The precise mechanisms regulating this differentiation remained unclear.
Purpose of the Study:
- To elucidate how epigenetic modification enzymes regulate neuronal differentiation in cancer cells.
- To investigate the interactions between EZH2, LSD1, DNMT1, HDAC1, SMADs, and β-CATENIN.
- To understand the role of EZH2 in maintaining the stability of these proteins.
Main Methods:
- Chemical inhibition of EZH2, LSD1, DNMTs, and HDACs in cancer cells and neural progenitor cells (NPCs).
- Analysis of protein-protein interactions and protein levels.
- Chromatin immunoprecipitation assays to assess gene promoter modifications.
- Investigation of EZH2's role in protein ubiquitination and degradation via USP7.
Main Results:
- Inhibition of these enzymes reduced protein levels (except HDAC1) and induced neuronal differentiation in cancer cells and NPCs.
- EZH2 was found to stabilize LSD1, HDAC1, DNMT1, β-CATENIN, and SMAD2/4 by recruiting USP7.
- Reduced EZH2 levels increased protein ubiquitination and degradation, decreased enzyme binding to neuronal gene promoters, and lessened Wnt/TGFβ signaling.
Conclusions:
- EZH2 stabilizes key proteins that promote tumorigenesis, beyond its histone methylation role.
- Chromatin modification factors operate similarly in cancer cells and NPCs, suggesting a unified framework for cancer initiation.
- These findings offer insights into cancer progression and potential novel therapeutic strategies.
More Related Videos
10:34Using an Automated Cell Counter to Simplify Gene Expression Studies: siRNA Knockdown of IL-4 Dependent Gene Expression in Namalwa Cells
Published on: April 14, 2010
12:02Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Related Concept Videos
mRNA Stability and Gene Expression
Cis-acting Elements involved in mRNA stability
mRNA Stability and Gene Expression
Cell Specific Gene Expression
What is Gene Expression?
Gene expression is the process in which DNA directs the synthesis of functional products, that is, proteins. Cells can regulate gene expression at various stages. It allows organisms to generate different cell types and enables cells to adapt to internal and external factors.
Genetic Information Flows from DNA to RNA to Protein
A gene is a stretch of DNA that serves as the blueprint for functional RNAs and proteins. Since DNA is made up of nucleotides and proteins consist of amino...
Regulation of Expression Occurs at Multiple Steps
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
Constitutive and Regulated Gene Expression
