4.4 Article

SCAMP5 mediates activity-dependent enhancement of NHE6 recruitment to synaptic vesicles during synaptic plasticity

期刊

MOLECULAR BRAIN
卷 14, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s13041-021-00763-0

关键词

NHE6; SCAMP5; cLTP; Presynaptic terminal; Activity-dependent synaptic localization; Synaptic vesicle; Presynaptic quantal size; Autism

资金

  1. National Research Foundation of Korea [2019R1A2C2089182, 800-20180489]
  2. Education and Research Encouragement Fund of SNUH
  3. National Research Foundation of Korea [2019R1A2C2089182] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

NHE6 on synaptic vesicles plays a critical role in regulating quantal size at glutamatergic synapses, with its recruitment by SCAMP5 impacting synaptic efficiency not only at rest but also during synaptic plasticity. Chemical long-term potentiation increases the number of NHE6-positive presynaptic boutons, a process dependent on SCAMP5, without affecting the quantal size of glutamate release.
Na+(K+)/H+ exchanger 6 (NHE6) on synaptic vesicle (SV) is critical for the presynaptic regulation of quantal size at the glutamatergic synapses by converting the chemical gradient (Delta pH) into membrane potential (Delta psi) across the SV membrane. We recently found that NHE6 directly interacts with secretory carrier membrane protein 5 (SCAMP5), and SCAMP5-dependent recruitment of NHE6 to SVs controls the strength of synaptic transmission by modulation of quantal size of glutamate release at rest. It is, however, unknown whether NHE6 recruitment by SCAMP5 plays a role during synaptic plasticity. Here, we found that the number of NHE6-positive presynaptic boutons was significantly increased by the chemical long-term potentiation (cLTP). Since cLTP involves new synapse formation, our results indicated that NHE6 was recruited not only to the existing presynaptic boutons but also to the newly formed presynaptic boutons. Knock down of SCAMP5 completely abrogated the enhancement of NHE6 recruitment by cLTP. Interestingly, despite an increase in the number of NHE6-positive boutons by cLTP, the quantal size of glutamate release at the presynaptic terminals remained unaltered. Together with our recent results, our findings indicate that SCAMP5-dependent recruitment of NHE6 plays a critical role in manifesting presynaptic efficacy not only at rest but also during synaptic plasticity. Since both are autism candidate genes, reduced presynaptic efficacy by interfering with their interaction may underlie the molecular mechanism of synaptic dysfunction observed in autism.

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