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Published on: April 17, 2026
Parp1 localizes within the Dnmt1 promoter and protects its unmethylated state by its enzymatic activity
Michele Zampieri1, Claudio Passananti, Roberta Calabrese
1Department of Cellular Biotechnologies and Hematology, Second Faculty of Medicine, University "La Sapienza", Rome, Italy.
Background:
Aberrant hypermethylation of CpG islands in housekeeping gene promoters and widespread genome hypomethylation are typical events occurring in cancer cells. The molecular mechanisms behind these cancer-related changes in DNA methylation patterns are not well understood. Two questions are particularly important: (i) how are CpG islands protected from methylation in normal cells, and how is this protection compromised in cancer cells, and (ii) how does the genome-wide demethylation in cancer cells occur. The latter question is especially intriguing since so far no DNA demethylase enzyme has been found.
Methodology/Principal Findings:
Our data show that the absence of ADP-ribose polymers (PARs), caused by ectopic over-expression of poly(ADP-ribose) glycohydrolase (PARG) in L929 mouse fibroblast cells leads to aberrant methylation of the CpG island in the promoter of the Dnmt1 gene, which in turn shuts down its transcription. The transcriptional silencing of Dnmt1 may be responsible for the widespread passive hypomethylation of genomic DNA which we detect on the example of pericentromeric repeat sequences. Chromatin immunoprecipitation results show that in normal cells the Dnmt1 promoter is occupied by poly(ADP-ribosyl)ated Parp1, suggesting that PARylated Parp1 plays a role in protecting the promoter from methylation.
Conclusions/Significance:
In conclusion, the genome methylation pattern following PARG over-expression mirrors the pattern characteristic of cancer cells, supporting our idea that the right balance between Parp/Parg activities maintains the DNA methylation patterns in normal cells. The finding that in normal cells Parp1 and ADP-ribose polymers localize on the Dnmt1 promoter raises the possibility that PARylated Parp1 marks those sequences in the genome that must remain unmethylated and protects them from methylation, thus playing a role in the epigenetic regulation of gene expression.
Insights
Aberrant DNA methylation in cancer cells involves CpG island hypermethylation and genome hypomethylation. This study reveals poly(ADP-ribose) glycohydrolase (PARG) over-expression disrupts DNA methylation patterns, mimicking cancer cells and implicating PARylated Parp1 in epigenetic regulation.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Mechanisms
Background:
- Cancer cells exhibit aberrant DNA methylation, including CpG island hypermethylation and genome hypomethylation.
- The precise mechanisms regulating these methylation changes and the role of DNA demethylation remain unclear.
- Understanding how normal cells protect CpG islands from methylation and how this is lost in cancer is crucial.
Purpose of the Study:
- To investigate the role of poly(ADP-ribose) polymers (PARs) in maintaining DNA methylation patterns.
- To elucidate the mechanisms underlying aberrant DNA methylation observed in cancer cells.
- To explore the function of poly(ADP-ribose) glycohydrolase (PARG) and poly(ADP-ribose) polymerase 1 (Parp1) in epigenetic regulation.
Main Methods:
- Over-expression of PARG in L929 mouse fibroblast cells.
- Analysis of DNA methylation patterns, including CpG islands and pericentromeric repeat sequences.
- Chromatin immunoprecipitation to assess protein occupancy on gene promoters.
Main Results:
- PARG over-expression led to aberrant methylation of the Dnmt1 gene promoter, causing transcriptional silencing.
- Dnmt1 silencing correlated with widespread passive hypomethylation of genomic DNA.
- PARylated Parp1 was found to occupy the Dnmt1 promoter in normal cells, suggesting a protective role against methylation.
Conclusions:
- A balanced activity of Parp1 and PARG is essential for maintaining normal DNA methylation patterns.
- PARG over-expression in cells mimics the DNA methylation profile of cancer cells.
- PARylated Parp1 may serve as a marker for unmethylated genomic regions, playing a key role in epigenetic gene regulation.
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