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Updated: Jul 12, 2025

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA damage and repair: underlying mechanisms leading to microcephaly
Jessica Honorato Ribeiro1,2, Nazlican Altinisik3, Nicholas Rajan1
1Radiobiology Unit, Belgian Nuclear Research Centre (SCK CEN), Mol, Belgium.
Abstract:
DNA-damaging agents and endogenous DNA damage constantly harm genome integrity. Under genotoxic stress conditions, the DNA damage response (DDR) machinery is crucial in repairing lesions and preventing mutations in the basic structure of the DNA. Different repair pathways are implicated in the resolution of such lesions. For instance, the non-homologous DNA end joining and homologous recombination pathways are central cellular mechanisms by which eukaryotic cells maintain genome integrity. However, defects in these pathways are often associated with neurological disorders, indicating the pivotal role of DDR in normal brain development. Moreover, the brain is the most sensitive organ affected by DNA-damaging agents compared to other tissues during the prenatal period. The accumulation of lesions is believed to induce cell death, reduce proliferation and premature differentiation of neural stem and progenitor cells, and reduce brain size (microcephaly). Microcephaly is mainly caused by genetic mutations, especially genes encoding proteins involved in centrosomes and DNA repair pathways. However, it can also be induced by exposure to ionizing radiation and intrauterine infections such as the Zika virus. This review explains mammalian cortical development and the major DNA repair pathways that may lead to microcephaly when impaired. Next, we discuss the mechanisms and possible exposures leading to DNA damage and p53 hyperactivation culminating in microcephaly.
Insights
DNA damage response pathways are vital for genome integrity and brain development. Impaired DNA repair mechanisms can lead to microcephaly, a condition of reduced brain size.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Genome integrity is constantly challenged by DNA-damaging agents and endogenous factors.
- The DNA damage response (DDR) machinery is essential for repairing DNA lesions and preventing mutations.
- Defects in DDR pathways are linked to neurological disorders and microcephaly, particularly during prenatal development.
Purpose of the Study:
- To review mammalian cortical development and key DNA repair pathways.
- To explore how impaired DNA repair contributes to microcephaly.
- To discuss mechanisms of DNA damage, p53 hyperactivation, and their role in microcephaly.
Main Methods:
- Literature review of DNA damage response pathways.
- Analysis of mechanisms linking DNA repair defects to microcephaly.
- Discussion of etiological factors including genetic mutations and environmental exposures.
Main Results:
- The brain is highly sensitive to DNA damage during prenatal development.
- Impaired DNA repair pathways (e.g., non-homologous DNA end joining, homologous recombination) can cause microcephaly.
- DNA damage accumulation can lead to neural stem/progenitor cell death, reduced proliferation, and premature differentiation.
Conclusions:
- Proper functioning of DNA repair pathways is critical for normal brain development.
- Disruptions in DDR can result in microcephaly through various cellular mechanisms.
- Understanding these pathways is crucial for addressing neurological disorders associated with DNA damage.
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