Inhibition of nucleolar transcription as a trigger for neuronal apoptosis

Katarzyna Kalita1, Denys Makonchuk, Cynthia Gomes

  • 1Department of Neurological Surgery, University of Louisville, Kentucky Spinal Cord Injury Research Center, Louisville, Kentucky 40292, USA.

Insights

DNA damage triggers nucleolar stress in neurons, reducing rRNA transcription and activating p53-dependent apoptosis. This process requires new protein synthesis and extranucleolar transcription, highlighting the nucleolus as a key DNA damage sensor.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Cell Biology

Background:

  • Mechanisms of DNA damage-induced apoptosis in post-mitotic neurons are not fully understood.
  • The role of nucleolar stress in neuronal apoptosis requires further investigation.

Purpose of the Study:

  • To elucidate the mechanisms of DNA damage-induced apoptosis in post-mitotic neurons.
  • To identify the role of nucleolar stress and rRNA transcription in neuronal apoptosis.

Main Methods:

  • Cultured cortical neurons treated with camptothecin (CPT) and other inhibitors.
  • Assessed rRNA transcription, nucleolar integrity, p53 activation, and apoptosis.
  • Utilized short hairpin RNA (shRNA) to inhibit transcription initiation factor IA (TIF-IA).

Main Results:

  • CPT induced nucleolar stress and reduced rRNA transcription, independent of p53.
  • Inhibition of TIF-IA caused nucleolar stress and p53-dependent neuronal apoptosis.
  • Apoptosis was blocked by protein synthesis inhibition but required extranucleolar transcription.

Conclusions:

  • Nucleoli act as sensors of DNA damage in post-mitotic neurons.
  • Reduced rRNA transcription leads to p53-mediated apoptosis, requiring de novo protein synthesis.
  • DNA damage selectivity for rDNA influences neuronal apoptosis induction.

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