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Updated: Jul 1, 2026

Examination of Proteins Bound to Nascent DNA in Mammalian Cells Using BrdU-ChIP-Slot-Western Technique
Published on: January 15, 2016
New factors in mammalian DNA repair-the chromatin connection
G Raschellà1, G Melino2,3, M Malewicz3
1ENEA Research Center Casaccia, Laboratory of Biosafety and Risk Assessment, Rome, Italy.
Abstract:
In response to DNA damage mammalian cells activate a complex network of stress response pathways collectively termed DNA damage response (DDR). DDR involves a temporary arrest of the cell cycle to allow for the repair of the damage. DDR also attenuates gene expression by silencing global transcription and translation. Main function of DDR is, however, to prevent the fixation of debilitating changes to DNA by activation of various DNA repair pathways. Proper execution of DDR requires careful coordination between these interdependent cellular responses. Deregulation of some aspects of DDR orchestration is potentially pathological and could lead to various undesired outcomes such as DNA translocations, cellular transformation or acute cell death. It is thus critical to understand the regulation of DDR in cells especially in the light of a strong linkage between the DDR impairment and the occurrence of common human diseases such as cancer. In this review we focus on recent advances in understanding of mammalian DNA repair regulation and a on the function of PAXX/c9orf142 and ZNF281 proteins that recently had been discovered to play a role in that process. We focus on regulation of double-strand DNA break (DSB) repair via the non-homologous end joining pathway, as unrepaired DSBs are the primary cause of pathological cellular states after DNA damage. Interestingly these new factors operate at the level of chromatin, which reinforces a notion of a central role of chromatin structure in the regulation of cellular DDR regulation.
Insights
Mammalian cells use the DNA damage response (DDR) to repair DNA and prevent disease. This review highlights new findings on chromatin-based regulation of DNA repair pathways, focusing on PAXX and ZNF281 proteins.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Mammalian cells activate complex DNA damage response (DDR) pathways upon DNA damage.
- DDR involves cell cycle arrest, suppressed transcription/translation, and DNA repair to prevent mutations.
- Dysregulation of DDR is linked to cancer and other diseases.
Purpose of the Study:
- To review recent advances in mammalian DNA repair regulation.
- To elucidate the role of PAXX/c9orf142 and ZNF281 proteins in DNA repair.
- To focus on the regulation of double-strand DNA break (DSB) repair via non-homologous end joining (NHEJ).
Main Methods:
- Literature review of recent studies on DNA damage response and repair.
- Analysis of the function of PAXX/c9orf142 and ZNF281 in cellular processes.
- Focus on chromatin-level regulation of DNA repair pathways.
Main Results:
- PAXX/c9orf142 and ZNF281 are newly discovered proteins involved in DNA repair regulation.
- These proteins function at the chromatin level, influencing DNA repair.
- Chromatin structure plays a central role in regulating cellular DDR.
Conclusions:
- Understanding DDR regulation is critical for preventing diseases like cancer.
- PAXX/c9orf142 and ZNF281 represent important new players in DNA repair mechanisms.
- Chromatin-based regulation is a key aspect of cellular response to DNA damage.
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