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Published on: July 20, 2011
p53- and Bax-mediated apoptosis in injured rat spinal cord
Ramaprasada Rao Kotipatruni1, Venkata Ramesh Dasari, Krishna Kumar Veeravalli
1Department of Cancer Biology and Pharmacology, University of Illinois College of Medicine at Peoria, One Illini Drive, Peoria, IL 61656, USA.
Abstract:
Spinal cord injury (SCI) induces a series of endogenous biochemical changes that lead to secondary degeneration, including apoptosis. p53-mediated mitochondrial apoptosis is likely to be an important mechanism of cell death in spinal cord injury. However, the signaling cascades that are activated before DNA fragmentation have not yet been determined. DNA damage-induced, p53-activated neuronal cell death has already been identified in several neurodegenerative diseases. To determine DNA damage-induced, p53-mediated apoptosis in spinal cord injury, we performed RT-PCR microarray and analyzed 84 DNA damaging and apoptotic genes. Genes involved in DNA damage and apoptosis were upregulated whereas anti-apoptotic genes were downregulated in injured spinal cords. Western blot analysis showed the upregulation of DNA damage-inducing protein such as ATM, cell cycle checkpoint kinases, 8-hydroxy-2'-deoxyguanosine (8-OHdG), BRCA2 and H2AX in injured spinal cord tissues. Detection of phospho-H2AX in the nucleus and release of 8-OHdG in cytosol were demonstrated by immunohistochemistry. Expression of p53 was observed in the neurons, oligodendrocytes and astrocytes after spinal cord injury. Upregulation of phospho-p53, Bax and downregulation of Bcl2 were detected after spinal cord injury. Sub-cellular distribution of Bax and cytochrome c indicated mitochondrial-mediated apoptosis taking place after spinal cord injury. In addition, we carried out immunohistochemical analysis to confirm Bax translocation into the mitochondria and activated p53 at Ser³⁹². Expression of APAF1, caspase 9 and caspase 3 activities confirmed the intrinsic apoptotic pathway after SCI. Activated p53 and Bax mitochondrial translocation were detected in injured spinal neurons. Taken together, the in vitro data strengthened the in vivo observations of DNA damage-induced p53-mediated mitochondrial apoptosis in the injured spinal cord.
Insights
Spinal cord injury triggers DNA damage and p53 activation, leading to programmed cell death via mitochondria. This study identifies key molecular players in this process, offering potential therapeutic targets for spinal cord injury treatment.
Area of Science:
- Neuroscience
- Molecular Biology
- Cellular Biology
Background:
- Spinal cord injury (SCI) causes secondary degeneration, including apoptosis.
- p53-mediated mitochondrial apoptosis is a key cell death mechanism in SCI.
- Signaling pathways preceding DNA fragmentation in SCI-induced apoptosis are not fully understood.
Purpose of the Study:
- To investigate DNA damage-induced, p53-mediated apoptosis in spinal cord injury.
- To identify the specific genes and proteins involved in the apoptotic cascade following SCI.
Main Methods:
- RT-PCR microarray analysis of 84 DNA damaging and apoptotic genes.
- Western blot analysis for key proteins (ATM, p53, Bax, Bcl2, H2AX).
- Immunohistochemistry to detect protein localization (phospho-H2AX, 8-OHdG, p53, Bax, cytochrome c).
Main Results:
- Upregulation of DNA damage/apoptotic genes and downregulation of anti-apoptotic genes observed.
- Key proteins like ATM, p53, Bax, and H2AX were upregulated; Bcl2 downregulated.
- Evidence of p53 activation, Bax translocation to mitochondria, and caspase activation confirmed the intrinsic apoptotic pathway.
Conclusions:
- DNA damage-induced p53-mediated mitochondrial apoptosis is a significant mechanism in spinal cord injury.
- Activated p53 and Bax translocation are crucial events in neuronal apoptosis after SCI.
- Findings provide insights into molecular mechanisms of SCI and potential therapeutic targets.
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