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Published on: December 27, 2024
DNA-PKcs, ATM, and ATR Interplay Maintains Genome Integrity during Neurogenesis
Vanessa Enriquez-Rios1,2, Lavinia C Dumitrache1, Susanna M Downing1
1Department of Genetics, St Jude Children's Research Hospital, Memphis, Tennessee 38105.
Abstract:
The DNA damage response (DDR) orchestrates a network of cellular processes that integrates cell-cycle control and DNA repair or apoptosis, which serves to maintain genome stability. DNA-PKcs (the catalytic subunit of the DNA-dependent kinase, encoded by PRKDC), ATM (ataxia telangiectasia, mutated), and ATR (ATM and Rad3-related) are related PI3K-like protein kinases and central regulators of the DDR. Defects in these kinases have been linked to neurodegenerative or neurodevelopmental syndromes. In all cases, the key neuroprotective function of these kinases is uncertain. It also remains unclear how interactions between the three DNA damage-responsive kinases coordinate genome stability, particularly in a physiological context. Here, we used a genetic approach to identify the neural function of DNA-PKcs and the interplay between ATM and ATR during neurogenesis. We found that DNA-PKcs loss in the mouse sensitized neuronal progenitors to apoptosis after ionizing radiation because of excessive DNA damage. DNA-PKcs was also required to prevent endogenous DNA damage accumulation throughout the adult brain. In contrast, ATR coordinated the DDR during neurogenesis to direct apoptosis in cycling neural progenitors, whereas ATM regulated apoptosis in both proliferative and noncycling cells. We also found that ATR controls a DNA damage-induced G2/M checkpoint in cortical progenitors, independent of ATM and DNA-PKcs. These nonoverlapping roles were further confirmed via sustained murine embryonic or cortical development after all three kinases were simultaneously inactivated. Thus, our results illustrate how DNA-PKcs, ATM, and ATR have unique and essential roles during the DDR, collectively ensuring comprehensive genome maintenance in the nervous system.
Significance Statement:
The DNA damage response (DDR) is essential for prevention of a broad spectrum of different human neurologic diseases. However, a detailed understanding of the DDR at a physiological level is lacking. In contrast to many in vitro cellular studies, here we demonstrate independent biological roles for the DDR kinases DNA-PKcs, ATM, and ATR during neurogenesis. We show that DNA-PKcs is central to DNA repair in nonproliferating cells, and restricts DNA damage accumulation, whereas ATR controls damage-induced G2 checkpoint control and apoptosis in proliferating cells. Conversely, ATM is critical for controlling apoptosis in immature noncycling neural cells after DNA damage. These data demonstrate functionally distinct, but cooperative, roles for each kinase in preserving genome stability in the nervous system.
Insights
The DNA damage response (DDR) kinases DNA-PKcs, ATM, and ATR have distinct roles in maintaining nervous system stability. DNA-PKcs repairs damage, ATR manages checkpoints in dividing cells, and ATM handles apoptosis in neural cells.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- The DNA damage response (DDR) is crucial for genome stability and preventing neurological diseases.
- The specific roles and interplay of key DDR kinases (DNA-PKcs, ATM, ATR) in the nervous system remain unclear.
- Existing research often relies on in vitro studies, lacking physiological context.
Purpose of the Study:
- To elucidate the distinct neural functions of DNA-PKcs, ATM, and ATR.
- To investigate the interplay between these kinases during neurogenesis and in the adult brain.
- To understand their collective role in maintaining genome stability within the nervous system.
Main Methods:
- Genetic analysis in mouse models.
- Investigation of DNA damage accumulation and apoptosis.
- Assessment of cell-cycle checkpoints in neural progenitors.
Main Results:
- DNA-PKcs loss increased neuronal progenitor apoptosis and DNA damage accumulation.
- ATR controlled DDR in proliferating neural progenitors, inducing apoptosis and a G2/M checkpoint.
- ATM regulated apoptosis in both proliferating and non-cycling neural cells.
- Simultaneous inactivation of all three kinases confirmed their unique, non-overlapping roles.
Conclusions:
- DNA-PKcs, ATM, and ATR possess distinct, essential functions in the nervous system's DDR.
- These kinases cooperate to ensure comprehensive genome maintenance in neural cells.
- Understanding these roles is vital for addressing neurodegenerative and neurodevelopmental disorders.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Neurogenesis and Regeneration of Nervous Tissue

