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Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
MDM2 promotes genome instability by ubiquitinating the transcription factor HBP1
Zhengyi Cao1, Junhui Xue1, Yuning Cheng1
1Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Beijing Key Laboratory of Protein Posttranslational Modifications and Cell Function, Peking University Health Science Center, Beijing, 100191, P. R. China.
Abstract:
Genome instability is a common feature of tumor cells, and the persistent presence of genome instability is a potential mechanism of tumorigenesis. The E3 ubiquitin ligase MDM2 is intimately involved in genome instability, but its mechanisms are unclear. Our data demonstrated that the transcription factor HBP1 is a target of MDM2. MDM2 facilitates HBP1 proteasomal degradation by ubiquitinating HBP1, regardless of p53 status, thus attenuating the transcriptional inhibition of HBP1 in the expression of its target genes, such as the DNA methyltransferase DNMT1 and histone methyltransferase EZH2, which results in global DNA hypermethylation and histone hypermethylation and ultimately genome instability. The repression of HBP1 by MDM2 finally promotes cell growth and tumorigenesis. Next, we thoroughly explored the regulatory mechanism of the MDM2/HBP1 axis in DNA damage repair following ionizing radiation. Our data indicated that MDM2 overexpression-mediated repression of HBP1 delays DNA damage repair and causes cell death in a p53-independent manner. This investigation elucidated the mechanism of how MDM2 promotes genome instability and enhances tumorigenesis in the absence of p53, thus providing a theoretical and experimental basis for targeting MDM2 as a cancer therapy.
Insights
The E3 ubiquitin ligase MDM2 targets HBP1 for degradation, promoting cancer by increasing DNA methylation and instability, independent of p53. This reveals a new therapeutic target for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genomics
Background:
- Genome instability is a hallmark of cancer and a driver of tumorigenesis.
- The E3 ubiquitin ligase MDM2 is implicated in genome instability, but its precise role remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which MDM2 contributes to genome instability and tumorigenesis.
- To investigate the regulatory role of the MDM2/HBP1 axis in DNA damage repair.
Main Methods:
- Ubiquitination assays to determine HBP1 as an MDM2 target.
- Analysis of gene expression for DNMT1 and EZH2.
- Assessment of DNA damage repair following ionizing radiation.
Main Results:
- MDM2 ubiquitinates and promotes the proteasomal degradation of HBP1, independent of p53 status.
- MDM2-mediated repression of HBP1 leads to global DNA and histone hypermethylation, causing genome instability.
- MDM2 overexpression delays DNA damage repair and induces cell death in a p53-independent manner.
Conclusions:
- MDM2 promotes tumorigenesis by repressing HBP1, leading to epigenetic alterations and genome instability.
- The MDM2/HBP1 axis represents a p53-independent mechanism promoting cancer development.
- Targeting MDM2 offers a potential therapeutic strategy for cancers, particularly those with p53 dysfunction.
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