Related Experiment Video
Updated: Jul 26, 2026

Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
NMDA-evoked excitotoxicity increases tissue transglutaminase in cerebellar granule cells
R Ientile1, D Caccamo, V Macaione
1Department of Biochemical, Physiological and Nutritional Sciences, Faculty of Medicine, University of Messina, Via Consolare Valeria, 98125, Messina, Italy. ientile@unime.it
Abstract:
In neuronal cells, excessive activation of glutamate receptors causes excitotoxic damage culminating in apoptotic and necrotic cell death. The molecular mechanism of excitotoxicity has been associated with excessive Ca(2+) influx and overload, triggering biochemical events that lead to cell death and tissue degeneration. Following mild insults via NMDA-receptor activation, central neurons undergo several biochemical modifications recognizable as early events in apoptotic machinery.Tissue transglutaminase, the most ubiquitous among cell transglutaminases, catalyzes the Ca(2+)-dependent protein cross-linking probably associated with morphological changes in several neurodegenerative disorders. The possible involvement of this enzyme in excitotoxicity-mediated events was investigated in primary cultures of cerebellar granule cells exposed for 30 min to NMDA (100 microM) in Locke's buffer. Under these conditions time-dependent increases in transglutaminase activity were observed. Tissue transglutaminase expression reached the highest levels within 3-4 h of NMDA exposure. Similarly, high levels of incorporation of fluorescent substrates were observed in living cells. Confocal laser microscopy analysis showed that fluorescein-labelled structures were distributed within the cytoplasm and close to the membranes of NMDA-exposed cells. These effects were dependent on the Ca(2+) influx triggered by the excitotoxic stimulus. Morphological changes in NMDA-treated cells gave evidence of significant cell damage which appeared within 5-6 h of NMDA exposure. These results suggest that increases in tissue transglutaminase may be associated to the effects of NMDA-induced excitotoxicity. Therefore, it is reasonable to hypothesize that if tissue transglutaminase levels and activity are up-regulated under such conditions, the protein cross-linking could be likely involved in excitotoxic response.
Insights
Excessive glutamate receptor activation causes excitotoxic brain damage. This study found that tissue transglutaminase activity increases following NMDA-receptor activation, suggesting its role in excitotoxicity.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Excitotoxicity, driven by excessive glutamate receptor activation, leads to neuronal cell death.
- Calcium (Ca2+) influx overload is a key mechanism in excitotoxicity, triggering cell degeneration.
- Tissue transglutaminase (tTG) catalyzes Ca2+-dependent protein cross-linking, implicated in neurodegenerative disorders.
Purpose of the Study:
- To investigate the involvement of tissue transglutaminase (tTG) in NMDA-receptor-mediated excitotoxicity.
- To determine if tTG activity and expression are altered following excitotoxic insults.
Main Methods:
- Primary cultures of cerebellar granule cells were exposed to NMDA (N-methyl-D-aspartate).
- Transglutaminase activity and expression levels were measured over time.
- Confocal laser microscopy was used to visualize substrate incorporation into cells.
Main Results:
- NMDA exposure led to time-dependent increases in transglutaminase activity.
- Tissue transglutaminase expression peaked 3-4 hours after NMDA exposure.
- Fluorescent substrate incorporation, indicating enzyme activity, was observed in NMDA-treated cells, dependent on Ca2+ influx.
Conclusions:
- Increased tissue transglutaminase activity and expression are associated with NMDA-induced excitotoxicity.
- Protein cross-linking by tTG may play a role in the cellular damage observed during excitotoxicity.
- These findings suggest tTG as a potential target in understanding or treating excitotoxic neuronal damage.
More Related Videos
04:48A High-throughput Calcium-flux Assay to Study NMDA-receptors with Sensitivity to Glycine/D-serine and Glutamate
Published on: July 10, 2018
07:11Examination of Anatomical Features of Retinal Ganglion Cells Under N-methyl-D-aspartic Acid (NMDA)-induced Excitotoxicity
Published on: September 19, 2025