Glutamate treatment mimics LTP- and LTD-like biochemical activity in viable synaptosome preparation

Long-term potentiation (LTP) and long-term depression (LTD) are considered to be the cellular mechanisms behind the increase or decrease of synaptic strength respectively. Electrophysiologically induced LTP/LTD is associated with the activation of glutamate receptors in the synaptic terminals result...

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Veröffentlicht in:Neurochemistry international 2020-03, Vol.134, p.104655-104655, Article 104655
Hauptverfasser: Gharami, Kusumika, Biswas, Subhas C.
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Sprache:eng
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Zusammenfassung:Long-term potentiation (LTP) and long-term depression (LTD) are considered to be the cellular mechanisms behind the increase or decrease of synaptic strength respectively. Electrophysiologically induced LTP/LTD is associated with the activation of glutamate receptors in the synaptic terminals resulting in the initiation of biochemical processes in the postsynaptic terminals and thus propagation of synaptic activity. Isolated nerve endings i.e. synaptosome preparation was used to study here, the biochemical phenotypes of LTP and LTD, and glutamate treatment in varying concentration for different time was used to induce those biochemical phenomena. Treatment with 200 μM glutamate showed increased GluA1 phosphorylation at serine 831 and activation of CaMKIIα by phosphorylation at threonine 286 like LTP, whereas 100 μM glutamate treatment showed decrease in GluA1 phosphorylation level at both pGluA1(S831) and pGluA1(S845), and activation of GSK3β by de-phosphorylating pGSK3β at serine 9 like LTD. The 200 μM glutamate treatment was associated with an increase in the local translation of Arc, BDNF, CaMKIIα and Homer1, whereas 100 μM glutamate treatments resulted in decrease in the level of the said synaptic proteins and the effect was blocked by the proteasomal inhibitor, Lactasystin. Both, the local translation and local degradation was sensitive to the Ca2+ chellator, Bapta-AM, indicating that both the phenomena were dependent on the rise in intra-synaptosomal Ca2+, like LTP and LTD. Overall the results of the present study suggest that synaptosomal preparations can be a viable alternative to study mechanisms underlying the biochemical activities of LTP/LTD in short term. •200 μM Glutamate treatment induces local translation in synaptosomes.•Exposure to 100 μM and 200 μM Glutamate shows LTD and LTP like activity respectively in the synaptosomes.•100 μM Glutamate treatment induces local degradation of proteins in the synaptosomes.•Both, local translation and local degradation are dependent on Ca2+ increase.•Local translation is dependent on BDNF-TrkB signaling, but local degradation is not.
ISSN:0197-0186
1872-9754
DOI:10.1016/j.neuint.2019.104655