Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse

Abstract Developing central synapses exhibit robust plasticity and undergo experience-dependent remodeling. Evidently, synapses in sensory systems such as auditory brainstem circuits mature rapidly to achieve high-fidelity neurotransmission for sound localization. This depends on a developmental swi...

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Main Authors: Lee Stephen Lesperance, Yi-Mei Yang, Lu-Yang Wang
Format: Article
Language:English
Published: BMC 2020-01-01
Series:Molecular Brain
Subjects:
Online Access:https://doi.org/10.1186/s13041-019-0536-2
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spelling doaj-c7de25400c27442a8a05b319ebb259d02021-01-17T12:25:54ZengBMCMolecular Brain1756-66062020-01-0113111810.1186/s13041-019-0536-2Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapseLee Stephen Lesperance0Yi-Mei Yang1Lu-Yang Wang2Program in Neurosciences & Mental Health, SickKids Research InstituteProgram in Neurosciences & Mental Health, SickKids Research InstituteProgram in Neurosciences & Mental Health, SickKids Research InstituteAbstract Developing central synapses exhibit robust plasticity and undergo experience-dependent remodeling. Evidently, synapses in sensory systems such as auditory brainstem circuits mature rapidly to achieve high-fidelity neurotransmission for sound localization. This depends on a developmental switch in AMPAR composition from slow-gating GluA1-dominant to fast-gating GluA4-dominant, but the mechanisms underlying this switch remain unknown. We hypothesize that patterned stimuli mimicking spontaneous/sound evoked activity in the early postnatal stage drives this gating switch. We examined activity-dependent changes in evoked and miniature excitatory postsynaptic currents (eEPSCs and mEPSCs) at the calyx of Held synapse by breaking through the postsynaptic membrane at different time points following 2 min of theta burst stimulation (TBS) to afferents in mouse brainstem slices. We found the decay time course of eEPSCs accelerated, but this change was not apparent until > 30 min after TBS. Histogram analyses of the decay time constants of mEPSCs for naive and tetanized synapses revealed two populations centered around τfast ≈ 0.4 and 0.8 ms, but the relative weight of the τ0.4 population over the τ0.8 population increased significantly only in tetanized synapses. Such changes are blocked by NMDAR or mGluR1/5 antagonists or inhibitors of CaMKII, PKC and protein synthesis, and more importantly precluded in GluA4−/− synapses, suggesting GluA4 is the substrate underlying the acceleration. Our results demonstrate a novel form of plasticity working through NMDAR and mGluR activation to trigger a gating switch of AMPARs with a temporally delayed onset of expression, ultimately enhancing the development of high-fidelity synaptic transmission.https://doi.org/10.1186/s13041-019-0536-2Activity-dependent plasticitySynaptic transmissionDeveloping plasticityAMPAR subunit compositionCalyx of held-MNTB synapse
collection DOAJ
language English
format Article
sources DOAJ
author Lee Stephen Lesperance
Yi-Mei Yang
Lu-Yang Wang
spellingShingle Lee Stephen Lesperance
Yi-Mei Yang
Lu-Yang Wang
Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
Molecular Brain
Activity-dependent plasticity
Synaptic transmission
Developing plasticity
AMPAR subunit composition
Calyx of held-MNTB synapse
author_facet Lee Stephen Lesperance
Yi-Mei Yang
Lu-Yang Wang
author_sort Lee Stephen Lesperance
title Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
title_short Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
title_full Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
title_fullStr Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
title_full_unstemmed Delayed expression of activity-dependent gating switch in synaptic AMPARs at a central synapse
title_sort delayed expression of activity-dependent gating switch in synaptic ampars at a central synapse
publisher BMC
series Molecular Brain
issn 1756-6606
publishDate 2020-01-01
description Abstract Developing central synapses exhibit robust plasticity and undergo experience-dependent remodeling. Evidently, synapses in sensory systems such as auditory brainstem circuits mature rapidly to achieve high-fidelity neurotransmission for sound localization. This depends on a developmental switch in AMPAR composition from slow-gating GluA1-dominant to fast-gating GluA4-dominant, but the mechanisms underlying this switch remain unknown. We hypothesize that patterned stimuli mimicking spontaneous/sound evoked activity in the early postnatal stage drives this gating switch. We examined activity-dependent changes in evoked and miniature excitatory postsynaptic currents (eEPSCs and mEPSCs) at the calyx of Held synapse by breaking through the postsynaptic membrane at different time points following 2 min of theta burst stimulation (TBS) to afferents in mouse brainstem slices. We found the decay time course of eEPSCs accelerated, but this change was not apparent until > 30 min after TBS. Histogram analyses of the decay time constants of mEPSCs for naive and tetanized synapses revealed two populations centered around τfast ≈ 0.4 and 0.8 ms, but the relative weight of the τ0.4 population over the τ0.8 population increased significantly only in tetanized synapses. Such changes are blocked by NMDAR or mGluR1/5 antagonists or inhibitors of CaMKII, PKC and protein synthesis, and more importantly precluded in GluA4−/− synapses, suggesting GluA4 is the substrate underlying the acceleration. Our results demonstrate a novel form of plasticity working through NMDAR and mGluR activation to trigger a gating switch of AMPARs with a temporally delayed onset of expression, ultimately enhancing the development of high-fidelity synaptic transmission.
topic Activity-dependent plasticity
Synaptic transmission
Developing plasticity
AMPAR subunit composition
Calyx of held-MNTB synapse
url https://doi.org/10.1186/s13041-019-0536-2
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