Abstract
PSD-95 is a major postsynaptic density protein that is degraded as a result of synaptic activity. We used four different methods to test the hypothesis that calpain is involved in PSD-95 turnover. Treatment of synaptic membranes with purified calpain resulted in a decrease in immunoreactivity of the native 95 kDa protein and the appearance of two smaller molecular weight species, migrating at 50 and 36 kDa, respectively. Calcium treatment of frozen-thawed brain sections produced an identical digestion pattern, an effect blocked by calpain inhibitors. N-methyl-D-aspartate treatment of organotypic hippocampal cultures produced truncation of PSD-95 and accumulation of the 36 kDa species. Finally, calpain-generated degradation products of PSD95 were prominent in neonatal hippocampus, and disappeared with postnatal development. Our data suggest that PSD-95 is a substrate for calpain, and that calpain-mediated truncation contributes to PSD-95 turnover.
MeSH terms
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Age Factors
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Animals
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Animals, Newborn
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Brain / cytology
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Brain / growth & development*
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Brain / metabolism*
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Calcium / metabolism
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Calcium / pharmacology
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Calpain / metabolism*
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Calpain / pharmacology*
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Cells, Cultured
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Disks Large Homolog 4 Protein
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Excitatory Amino Acid Agonists / pharmacology
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Hippocampus / drug effects
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Hippocampus / metabolism
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Intracellular Signaling Peptides and Proteins
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Membrane Proteins
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N-Methylaspartate / pharmacology
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Nerve Tissue Proteins / drug effects*
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Nerve Tissue Proteins / metabolism*
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Neurons / drug effects
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Neurons / metabolism
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Rats
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Rats, Sprague-Dawley
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Synapses / drug effects*
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Synapses / metabolism*
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Synaptic Transmission / drug effects
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Synaptic Transmission / physiology
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Synaptosomes / drug effects
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Synaptosomes / metabolism
Substances
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Disks Large Homolog 4 Protein
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Dlg4 protein, rat
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Excitatory Amino Acid Agonists
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Intracellular Signaling Peptides and Proteins
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Membrane Proteins
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Nerve Tissue Proteins
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postsynaptic density proteins
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N-Methylaspartate
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Calpain
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Calcium