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Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
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.
Abstract:
In post-mitotic neurons, the mechanisms of the apoptotic checkpoint that is activated by DNA damage remain unclear. Here we show that in cultured cortical neurons, the DNA damaging agent camptothecin (CPT) reduced transcription of rRNA and disrupted nucleolar staining for B23/nucleophosmin suggesting DNA damage-induced nucleolar stress. Although CPT activated the pro-apoptotic protein p53, the CPT-induced nucleolar stress was unaffected by p53 inhibition. In addition, brain-derived neurotrophic factor-mediated protection from CPT-induced apoptosis prevented neither nucleolar stress nor p53 activation. Therefore, inhibition of rRNA transcription might be upstream of the pro-apoptotic p53 activity. Indeed, short hairpin RNA-mediated inhibition of a RNA-Polymerase-I co-factor, transcription initiation factor IA, attenuated rRNA transcription causing nucleolar stress and p53-dependent neuronal apoptosis. The protein synthesis inhibitor cycloheximide blocked apoptosis that was induced by over-expressed shTIF-IA or active form of p53. Also, the general transcription inhibitor actinomycin D triggered nucleolar stress and activated p53. However, it did not induce apoptosis except at the low concentration of 0.05 microg/mL with stronger inhibitory activity against nucleolar than extranucleolar transcription. Hence, nucleolar stress-activated apoptosis requires extranucleolar transcription. This study identifies the nucleoli of post-mitotic neurons as sensors of DNA damage coupling reduced rRNA transcription to p53-mediated apoptosis that requires de novo expression of protein-coding genes. Thus, rDNA selectivity of DNA damage may determine its ability to induce neuronal apoptosis.
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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