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Visualization of Endoplasmic Reticulum Subdomains in Cultured Cells
Published on: February 18, 2014
CaMKII-dependent endoplasmic reticulum fission by whisker stimulation and during cortical spreading depolarization
Krzysztof Kucharz1, Martin Lauritzen1,2
1Department of Neuroscience and Center for Healthy Aging, University of Copenhagen, Maersk Tower, Blegdamsvej 3, 2200 Copenhagen N, Denmark.
Abstract:
Cortical spreading depolarization waves, the cause underlying migraine aura, are also the markers and mechanism of pathology in the acutely injured human brain. Propagation of spreading depolarization wave uniquely depends on the interaction between presynaptic and postsynaptic glutamate N-methyl-d-aspartate receptors (NMDARs). In the normally perfused brain, even a single wave causes a massive depolarization of neurons and glia, which results in transient loss of neuronal function and depression of the ongoing electrocorticographic activity. Endoplasmic reticulum is the cellular organelle of particular importance for modulation of neurotransmission. Neuronal endoplasmic reticulum structure is assumed to be persistently continuous in neurons, but is rapidly lost within 1 to 2 min of global cerebral ischaemia, i.e. the organelle disintegrates by fission. This phenomenon appears to be timed with the cardiac arrest-induced cortical spreading depolarizations, rather than ensuing cell death. To what extent NMDAR-dependent processes may trigger neuronal endoplasmic reticulum fission and whether fission is reversible in the normally perfused brain is unknown. We used two-photon microscopy to examine neuronal endoplasmic reticulum structural dynamics during whisker stimulation and cortical spreading depolarizations in vivo. Somatosensory stimulation triggered loss of endoplasmic reticulum continuity, a likely outcome of constriction and fission, in dendritic spines within less than 10 s of stimulation, which was spontaneously reversible and recovery to normal took 5 min. The endoplasmic reticulum fission was inhibited by blockade of NMDAR and Ca2+/calmodulin-dependent protein kinase II (CaMKII) activated downstream of the NMDARs, whereas inhibition of guanosine triphosphate hydrolases hindered regain of endoplasmic reticulum continuity, i.e. fusion. In contrast to somatosensory stimulation, endoplasmic reticulum fission during spreading depolarization was widespread and present in dendrites and spines, and was preceded by dramatic rise in intracellular Ca2+. The endoplasmic reticulum fission during spreading depolarization was more persistent, as 1 h after the depolarization cortical neurons still exhibited loss of endoplasmic reticulum continuity. Notably, endoplasmic reticulum fission was accompanied with loss of electrocorticographic activity, whereas subsequent regain of synaptic function paralleled the organelle fusion. Furthermore, blocking CaMKII activity partly rescued endoplasmic reticulum fission and markedly shortened the recovery time of brain spontaneous activity. Thus, prevention of endoplasmic reticulum fission with CaMKII inhibitors may be a novel strategy to rescue brain function in patients with migraine and a promising therapeutic avenue in the acutely injured brain.
Insights
Cortical spreading depolarization causes endoplasmic reticulum fission in neurons, impacting brain function. Inhibiting CaMKII may restore neuronal function after injury or in migraine.
Area of Science:
- Neuroscience
- Cell Biology
Background:
- Cortical spreading depolarization (CSD) is implicated in migraine aura and acute brain injury.
- Endoplasmic reticulum (ER) structure is crucial for neuronal function and neurotransmission.
- ER fission occurs rapidly during global cerebral ischemia, coinciding with CSD.
Purpose of the Study:
- To investigate the role of N-methyl-d-aspartate receptors (NMDARs) and CaMKII in ER fission during CSD.
- To examine the reversibility of ER fission in response to somatosensory stimulation and CSD.
- To explore the therapeutic potential of targeting ER fission for brain injury and migraine.
Main Methods:
- In vivo two-photon microscopy to visualize neuronal ER dynamics.
- Utilized whisker stimulation and induced cortical spreading depolarizations in a rodent model.
- Pharmacological inhibition of NMDARs, CaMKII, and guanosine triphosphate hydrolases.
Main Results:
- Somatosensory stimulation induced rapid, reversible ER fission in dendritic spines, dependent on NMDARs and CaMKII.
- CSD triggered widespread, persistent ER fission in dendrites and spines, associated with increased intracellular calcium.
- Inhibition of CaMKII partially prevented ER fission and accelerated the recovery of electrocorticographic activity.
Conclusions:
- NMDAR and CaMKII signaling mediate ER fission during CSD and somatosensory stimulation.
- ER fission is a key mechanism contributing to functional loss during CSD.
- Targeting CaMKII to prevent ER fission presents a potential therapeutic strategy for migraine and acute brain injury.
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