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Published on: December 9, 2014
Conditional mGluR5 knockout in glutamatergic pathways disrupts the development of excitatory synaptic transmission
Huimei Wang1,2, Danah Alquraish3, Xiaoyan Yu3
1Department of Biomedical Sciences, College of Medicine, University Hospitals NEOMED Hearing Research Center, Northeast Ohio Medical University, Rootstown, Ohio, United States.
Abstract:
Metabotropic glutamate receptor 5 (mGluR5) plays a pivotal role in neurodevelopment. Here, we investigated the consequences of mGluR5 loss-of-function on the development of glutamatergic transmission onto the medial nucleus of the trapezoid body (MNTB). Using the Cre-loxP system, we generated a conditional knockout (KO) mouse line in which mGluR5 expression was selectively eliminated in vesicular glutamate transporter 2 (VGluT2)-expressing glutamatergic pathways, including the calyx of Held synapse innervating MNTB neurons. Whole cell patch-clamp recordings from mice of either sex at postnatal days 30-38 were used to compare the excitatory synaptic properties of MNTB neurons between KO mice and wild-type controls. Upon afferent stimulation of the trapezoid body, MNTB neurons exhibited two distinct types of evoked EPSCs (eEPSCs): large calyceal all-or-none and smaller non-calyceal responses. In mGluR5 KO mice, there was a significant increase in the proportion of neurons exhibiting non-calyceal eEPSCs. The calyceal all-or-none eEPSCs showed significantly prolonged latency, along with slower kinetics in both eEPSCs and asynchronous EPSCs. Analysis of short-term synaptic plasticity of the non-calyceal eEPSCs revealed an increased paired-pulse ratio in mGluR5 KO mice. In addition, membrane capacitance was significantly reduced, consistent with a smaller somatic area in mGluR5 KO mice. These results suggest that mGluR5 plays a critical role in shaping the excitatory synaptic properties necessary for fast temporal processing in the MNTB.NEW & NOTEWORTHY Metabotropic glutamate receptor 5 (mGluR5) is known to play critical roles in neurodevelopment, but its specific contribution to auditory circuit formation has remained unknown. Using a conditional mGluR5 knockout mouse model, we show that a major glutamatergic pathway in the auditory brainstem is impaired, particularly in synaptic timing, and is accompanied by a reduced somatic area of the postsynaptic neurons. These findings highlight a pivotal role for mGluR5 in shaping auditory brainstem circuitry.
Insights
Loss of metabotropic glutamate receptor 5 (mGluR5) impairs auditory brainstem synaptic timing and neuron size. This highlights mGluR5
Area of Science:
- Neuroscience
- Auditory system development
- Synaptic plasticity
Background:
- Metabotropic glutamate receptor 5 (mGluR5) is crucial for neurodevelopment.
- The role of mGluR5 in auditory circuit formation, specifically glutamatergic transmission, is not well understood.
- The medial nucleus of the trapezoid body (MNTB) is key for auditory processing.
Purpose of the Study:
- To investigate the impact of mGluR5 loss-of-function on glutamatergic transmission in the MNTB.
- To analyze the effects on synaptic properties and neuronal morphology in a conditional knockout mouse model.
Main Methods:
- Generated a conditional knockout mouse line lacking mGluR5 in vesicular glutamate transporter 2 (VGluT2)-expressing neurons.
- Utilized whole-cell patch-clamp recordings in MNTB neurons from postnatal day 30-38.
- Compared excitatory postsynaptic currents (eEPSCs) and short-term plasticity between knockout and wild-type mice.
Main Results:
- mGluR5 knockout mice showed an increased proportion of non-calyceal eEPSCs.
- Calyceal eEPSCs exhibited prolonged latency and slower kinetics in knockout mice.
- Reduced membrane capacitance and smaller somatic area were observed in mGluR5 knockout mice.
Conclusions:
- mGluR5 is essential for establishing fast temporal processing in the MNTB.
- Loss of mGluR5 disrupts excitatory synaptic properties and neuronal development in the auditory brainstem.
- These findings underscore the critical role of mGluR5 in shaping auditory circuitry.
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