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Assessment of Dendritic Arborization in the Dentate Gyrus of the Hippocampal Region in Mice
Published on: March 31, 2015
Calcium-dependent NMDA-induced dendritic injury and MAP2 loss in acute hippocampal slices
M M Hoskison1, Y Yanagawa, K Obata
1Department of Neurosciences, University of New Mexico School of Medicine, MSC08 4740, University of New Mexico, Albuquerque, NM 87120-0001, USA.
Abstract:
Excessive glutamate receptor stimulation can produce rapid disruption of dendritic morphology, including dendritic beading. We recently showed that transient N-methyl-d-aspartic acid (NMDA) exposure resulted in irreversible loss of synaptic function and loss of microtubule associated protein 2 (MAP2) from apical dendrites. The present study examined the initiation and progression of dendritic injury in mouse hippocampal slices following this excitotoxic stimulus. NMDA exposure (30 microM, 10 min) produced irregularly shaped dendritic swellings, evident first in distal apical dendrite branches, and later (20-90 min) involving most proximal dendrites. Over the same time course, immunoreactivity for the microtubule-associated protein MAP2 was progressively lost from apical dendrites, and increased in CA1 somata. This damage and MAP2 loss was Ca2+-dependent, and was not reversible within the time course of these experiments (90 min post-NMDA washout). Formation of regularly-spaced, spherical dendritic varicosities (dendritic beading) was rarely observed, except when NMDA was applied in Ca2+-free ACSF. Under these conditions, beading appeared predominant in interneurons, as assessed from experiments with GAD67-GFP (Deltaneo) mice. Ca2+-removal was associated with significantly better preservation of dendritic structure (MAP2) following NMDA exposure, and other ionic fluxes (sensitive to Gd3+ and spermine) may contribute to residual damage occurring in Ca2+-free conditions. These results suggest that irregularly shaped dendritic swelling is a Ca2+-dependent degenerative event that may be quite different from Ca2+-independent dendritic beading, and can be a predominant type of injury in CA1 pyramidal neurons in slices.
Insights
Excessive glutamate receptor stimulation causes calcium-dependent dendritic swelling and microtubule-associated protein 2 (MAP2) loss in neurons. This excitotoxic injury, particularly in pyramidal neurons, differs from calcium-independent dendritic beading.
Area of Science:
- Neuroscience
- Cell Biology
- Neurodegeneration
Background:
- Excessive glutamate receptor stimulation, or excitotoxicity, can rapidly damage neuronal structures.
- Previous research demonstrated that N-methyl-d-aspartic acid (NMDA) exposure causes irreversible synaptic dysfunction and loss of microtubule-associated protein 2 (MAP2) from dendrites.
Purpose of the Study:
- To investigate the initiation and progression of dendritic injury following excitotoxic NMDA stimulation in mouse hippocampal slices.
- To differentiate between calcium-dependent dendritic swelling and calcium-independent dendritic beading.
Main Methods:
- Mouse hippocampal slices were exposed to N-methyl-d-aspartic acid (NMDA) excitotoxic stimulus.
- Immunoreactivity for microtubule-associated protein 2 (MAP2) was assessed over time.
- Experiments were conducted in both standard and calcium-free artificial cerebrospinal fluid (ACSF).
Main Results:
- NMDA exposure induced irregularly shaped dendritic swellings, primarily in distal apical dendrites, progressing to proximal dendrites.
- Progressive loss of MAP2 from dendrites and increase in CA1 somata occurred over 90 minutes post-stimulus.
- Dendritic beading was rare, observed mainly in interneurons under calcium-free conditions.
- Damage and MAP2 loss were calcium-dependent and irreversible within the experimental timeframe.
Conclusions:
- Irregularly shaped dendritic swelling is a calcium-dependent degenerative process distinct from dendritic beading.
- This calcium-dependent swelling is a predominant injury type in CA1 pyramidal neurons following excitotoxicity.
- Ionic fluxes, beyond calcium, may contribute to residual damage even in calcium-free conditions.

