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Published on: October 30, 2018
CaMKII phosphorylates collapsin response mediator protein 2 and modulates axonal damage during glutamate
Sheng T Hou1, Susan X Jiang, Amy Aylsworth
1Experimental NeuroTherapeutics Laboratory, Institute for Biological Sciences, National Research Council Canada, Ottawa, Ontario, Canada. sheng.hou@nrc-cnrc.gc.ca
Abstract:
Intracellular calcium influx through NMDA receptors triggers a cascade of deleterious signaling events which lead to neuronal death in neurological conditions such as stroke. However, it is not clear as to the molecular mechanism underlying early damage response from axons and dendrites which are important in maintaining a network essential for the survival of neurons. Here, we examined changes of axons treated with glutamate and showed the appearance of betaIII-tubulin positive varicosities on axons before the appearance of neuronal death. Dizocilpine blocked the occurrence of varicosities on axons suggesting that these microstructures were mediated by NMDA receptor activities. Despite early increased expression of pCaMKII and pMAPK after just 10 min of glutamate treatment, only inhibitors to Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) and calpain prevented the occurrence of axonal varicosities. In contrast, inhibitors to Rho kinase, mitogen-activated protein kinase and phosphoinositide 3-kinase were not effective, nor were they able to rescue neurons from death, suggesting CaMKII and calpain are important in axon survival. Activated CaMKII directly phosphorylates collapsin response mediator protein (CRMP) 2 which is independent of calpain-mediated cleavage of CRMP2. Over-expression of CRMP2, but not the phosphorylation-resistant mutant CRMP2-T555A, increased axonal resistance to glutamate toxicity with reduced numbers of varicosities. The levels of both pCRMP2 and pCaMKII were also increased robustly within early time points in ischemic brains and which correlated with the appearance of axonal varicosities in the ischemic neurons. Collectively, these studies demonstrated an important role for CaMKII in modulating the integrity of axons through CRMP2 during excitotoxicity-induced neuronal death.
Insights
Calcium influx via NMDA receptors causes neuronal death. This study reveals Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) protects axons by phosphorylating CRMP2, preventing damage during excitotoxicity.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- NMDA receptor activation leads to calcium influx, initiating signaling pathways causing neuronal death in conditions like stroke.
- Early axonal and dendritic damage mechanisms contributing to neuronal network failure during excitotoxicity remain unclear.
Purpose of the Study:
- To investigate the molecular mechanisms of early axonal damage in response to excitotoxicity.
- To identify key signaling molecules involved in axon survival during NMDA receptor-mediated neuronal death.
Main Methods:
- Axonal treatment with glutamate and NMDA receptor antagonists (dizocilpine).
- Analysis of axonal varicosity formation and neuronal death.
- Inhibition studies targeting CaMKII, calpain, Rho kinase, MAPK, and PI3K.
- Western blot analysis for phosphorylated proteins (pCaMKII, pMAPK, pCRMP2).
- CRMP2 overexpression and mutant studies.
Main Results:
- Glutamate induced axonal varicosities, mediated by NMDA receptor activity.
- Inhibitors of CaMKII and calpain, but not Rho kinase, MAPK, or PI3K, prevented axonal varicosities.
- Activated CaMKII directly phosphorylates CRMP2; CRMP2 overexpression enhanced axonal resistance to glutamate toxicity.
- Increased pCaMKII and pCRMP2 levels correlated with axonal varicosities in ischemic brains.
Conclusions:
- CaMKII and calpain play critical roles in axon survival during excitotoxicity.
- CaMKII-mediated phosphorylation of CRMP2 is a key mechanism for maintaining axonal integrity.
- Targeting CaMKII and CRMP2 may offer therapeutic strategies for neurological conditions involving excitotoxicity.
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