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Protein deiminases: new players in the developmentally regulated loss of neural regenerative ability
Sigrun Lange1, Stefanie Gögel, Kit-Yi Leung
1Developmental Biology Unit, UCL Institute of Child Health, London WC1N 1EH, UK.
Abstract:
Spinal cord regenerative ability is lost with development, but the mechanisms underlying this loss are still poorly understood. In chick embryos, effective regeneration does not occur after E13, when spinal cord injury induces extensive apoptotic response and tissue damage. As initial experiments showed that treatment with a calcium chelator after spinal cord injury reduced apoptosis and cavitation, we hypothesized that developmentally regulated mediators of calcium-dependent processes in secondary injury response may contribute to loss of regenerative ability. To this purpose we screened for such changes in chick spinal cords at stages of development permissive (E11) and non-permissive (E15) for regeneration. Among the developmentally regulated calcium-dependent proteins identified was PAD3, a member of the peptidylarginine deiminase (PAD) enzyme family that converts protein arginine residues to citrulline, a process known as deimination or citrullination. This post-translational modification has not been previously associated with response to injury. Following injury, PAD3 up-regulation was greater in spinal cords injured at E15 than at E11. Consistent with these differences in gene expression, deimination was more extensive at the non-regenerating stage, E15, both in the gray and white matter. As deimination paralleled the extent of apoptosis, we investigated the effect of blocking PAD activity on cell death and deiminated-histone 3, one of the PAD targets we identified by mass-spectrometry analysis of spinal cord deiminated proteins. Treatment with the PAD inhibitor, Cl-amidine, reduced the abundance of deiminated-histone 3, consistent with inhibition of PAD activity, and significantly reduced apoptosis and tissue loss following injury at E15. Altogether, our findings identify PADs and deimination as developmentally regulated modulators of secondary injury response, and suggest that PADs might be valuable therapeutic targets for spinal cord injury.
Insights
Spinal cord regeneration is lost during development. Researchers found that peptidylarginine deiminases (PADs) and deimination increase after injury in non-regenerative stages, suggesting PADs as potential therapeutic targets for spinal cord injury.
Area of Science:
- Neuroscience
- Developmental Biology
- Biochemistry
Background:
- Spinal cord regenerative ability is lost during embryonic development.
- The mechanisms causing this loss, particularly in secondary injury response, are not fully understood.
- Calcium-dependent processes are implicated in the reduced regeneration observed after embryonic day 13 in chick embryos.
Purpose of the Study:
- To investigate developmentally regulated, calcium-dependent proteins involved in the secondary injury response after spinal cord injury.
- To identify specific molecular pathways contributing to the loss of spinal cord regeneration.
- To explore peptidylarginine deiminases (PADs) as potential targets for improving spinal cord injury outcomes.
Main Methods:
- Screening of chick spinal cords at regenerative (E11) and non-regenerative (E15) stages post-injury.
- Identification of calcium-dependent proteins, including PAD3, using molecular screening.
- Mass-spectrometry analysis to identify deiminated proteins and PAD targets.
- Treatment with a PAD inhibitor (Cl-amidine) to assess its effect on apoptosis and tissue damage.
Main Results:
- PAD3 expression and deimination were significantly higher in spinal cords at the non-regenerative stage (E15) compared to the regenerative stage (E11).
- Deimination levels correlated with the extent of apoptosis following spinal cord injury.
- Inhibition of PAD activity using Cl-amidine reduced deiminated-histone 3 levels, decreased apoptosis, and minimized tissue loss after injury at E15.
Conclusions:
- Peptidylarginine deiminases (PADs) and the process of deimination are developmentally regulated and modulate the secondary injury response in the spinal cord.
- Increased deimination activity parallels the loss of regenerative capacity during spinal cord development.
- PADs represent promising therapeutic targets for mitigating secondary injury and potentially enhancing recovery after spinal cord injury.
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