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Moutoussamy, C.

Publications and source records attributed to Moutoussamy, C..

2 recordsLinked to original sources

Core-N-glycans are atypically abundant at the neuronal surface and regulate glutamate receptor signaling

Neurotransmitter receptors, like most surface proteins, are extensively modified by covalent addition of N-glycans during their synthesis. Surprisingly, the most abundant N-glycans in the mammalian brain are core-glycans, sugars that typically earmark immature intracellular proteins in non-neuronal cells. The function of these glycans in neurons is yet largely unknown. To address this, we combined conditional gene knockout, mass spectrometry, quantitative imaging and electrophysiological recordings in cultured neurons and brain slices. We show that core-glycans are expressed at high levels at the neuronal surface, indicating expression on functional proteins. Focusing on excitatory synapses, we found that core-glycans reduce dendritic spine density and synaptic AMPA receptor expression but are overall sufficient to sustain functional synapses. Our results indicate that core-glycans slow the desensitization of AMPA receptor complexes and reduce NMDA receptor signaling at synapses. Core-glycans hence impair NMDA receptor-dependent synaptic plasticity, unraveling a previously unrecognized role for N-glycosylation in regulating synaptic composition and transmission efficacy.

cell biology↗

Fast 2-photon stimulation using holographic patterns

Two decades after its introduction, optogenetics - a biological technique to control the activity of neurons or other cell types with light - remains a cutting edge and promising tool to study biological processes. Its increasing usage in research varies widely from causally exploring biological mechanisms and neural computations, to neurostimulation and sensory restauration. To stimulate neurons in the brain, a variety of approaches have been developed to generate precise spatiotemporal light patterns. Yet certain constrains still exists in the current optical techniques to activate a neuronal population with both cellular resolution and millisecond precision. Here, we describe an experimental setup allowing to stimulate a few tens of neurons in a plane at sub-millisecond rates using 2-photon activation. A liquid crystal on silicon spatial light modulator (LCoS-SLM) was used to generate spatial patterns in 2 dimensions. The image of the patterns was formed on the plane of a digital micromirror device (DMD) that was used as a fast temporal modulator of each region of interest. Using fluorescent microscopy and patch-clamp recording of neurons in culture expressing the light-gated ion channels, we characterized the temporal and spatial resolution of the microscope. We described the advantages of combining the LCoS-SLM with the DMD to maximize the temporal precision, modulate the illumination amplitude, and reduce background activation. Finally, we showed that this approach can be extended to patterns in 3 dimensions. We concluded that the methodology is well suited to address important questions about the role of temporal information in neuronal coding.

neuroscience↗