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Specific ion channels contribute to key elements of pathology during secondary degeneration following neurotrauma
Ryan L O'Hare Doig1,2, Wissam Chiha1,2, Marcus K Giacci1
1Experimental and Regenerative Neurosciences, School of Biological Sciences, The University of Western Australia, Crawley, WA, 6009, Australia.
Background:
Following partial injury to the central nervous system, cells beyond the initial injury site undergo secondary degeneration, exacerbating loss of neurons, compact myelin and function. Changes in Ca2+ flux are associated with metabolic and structural changes, but it is not yet clear how flux through specific ion channels contributes to the various pathologies. Here, partial optic nerve transection in adult female rats was used to model secondary degeneration. Treatment with combinations of three ion channel inhibitors was used as a tool to investigate which elements of oxidative and structural damage related to long term functional outcomes. The inhibitors employed were the voltage gated Ca2+ channel inhibitor Lomerizine (Lom), the Ca2+ permeable AMPA receptor inhibitor YM872 and the P2X7 receptor inhibitor oxATP.
Results:
Following partial optic nerve transection, hyper-phosphorylation of Tau and acetylated tubulin immunoreactivity were increased, and Nogo-A immunoreactivity was decreased, indicating that axonal changes occurred acutely. All combinations of ion channel inhibitors reduced hyper-phosphorylation of Tau and increased Nogo-A immunoreactivity at day 3 after injury. However, only Lom/oxATP or all three inhibitors in combination significantly reduced acetylated tubulin immunoreactivity. Most combinations of ion channel inhibitors were effective in restoring the lengths of the paranode and the paranodal gap, indicative of the length of the node of Ranvier, following injury. However, only all three inhibitors in combination restored to normal Ankyrin G length at the node of Ranvier. Similarly, HNE immunoreactivity and loss of oligodendrocyte precursor cells were only limited by treatment with all three ion channel inhibitors in combination.
Conclusions:
Data indicate that inhibiting any of a range of ion channels preserves certain elements of axon and node structure and limits some oxidative damage following injury, whereas ionic flux through all three channels must be inhibited to prevent lipid peroxidation and preserve Ankyrin G distribution and OPCs.
Insights
Inhibiting specific ion channels after optic nerve injury helps preserve axon structure and limits oxidative damage. Complete recovery requires blocking all three channels to prevent lipid peroxidation and maintain cell integrity.
Area of Science:
- Neuroscience
- Neurobiology
- Cellular Biology
Background:
- Secondary degeneration after central nervous system injury exacerbates neuron and myelin loss.
- Calcium (Ca2+) flux changes are linked to metabolic and structural damage, but specific ion channel roles remain unclear.
- Optic nerve transection in rats models secondary degeneration to study ion channel inhibitor effects.
Purpose of the Study:
- To investigate how inhibiting specific ion channels impacts secondary degeneration after optic nerve injury.
- To determine which ion channel inhibitors are most effective in preserving neuronal structure and function.
- To correlate ion channel inhibition with long-term functional outcomes and cellular damage.
Main Methods:
- Partial optic nerve transection in adult female rats.
- Treatment with combinations of three ion channel inhibitors: Lomerizine (Lom), YM872, and oxATP.
- Assessment of axonal changes, including Tau hyper-phosphorylation, acetylated tubulin, and Nogo-A immunoreactivity.
- Evaluation of node of Ranvier structure (paranode, paranodal gap, Ankyrin G length).
- Measurement of oxidative damage (HNE immunoreactivity) and oligodendrocyte precursor cell (OPC) loss.
Main Results:
- All inhibitor combinations reduced Tau hyper-phosphorylation and increased Nogo-A.
- Lomerizine/oxATP or all three inhibitors significantly reduced acetylated tubulin.
- Most combinations improved paranode and paranodal gap lengths.
- Only the combination of all three inhibitors restored Ankyrin G length and limited HNE immunoreactivity and OPC loss.
Conclusions:
- Inhibiting individual ion channels preserves some axon/node structure and limits oxidative damage.
- Complete inhibition of ionic flux through all three channels (Lomerizine, YM872, oxATP) is necessary to prevent lipid peroxidation.
- Blocking all three channels is crucial for preserving Ankyrin G distribution and oligodendrocyte precursor cells (OPCs).
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