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.

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.

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