Synaptic Fluorescence Quantification

Synaptic fluorescence quantification is a microscopy-based method for measuring fluorescent signals at synapses, helping researchers assess synaptic structure, protein localization, and neuronal activity. The approach uses fluorescent labels, such as genetically encoded indicators or tagged synaptic proteins, and analyzes image intensity, puncta number, size, or spatial distribution after image acquisition and background correction. In neuroscience, these measurements can reveal changes in neurotransmitter release, calcium dynamics, receptor organization, and synaptic plasticity. By converting optical signals into quantitative data, the method supports studies of neural circuit function, development, disease mechanisms, and responses to experimental treatments.

Synaptic Fluorescence Quantification - Related Videos

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JoVE Journal - Neuroscience

Automated Quantification of Synaptic Fluorescence in C. elegans

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Cited by 5 •

2012

The abundance of neurotransmitter receptors clustered at synapses strongly influences synaptic strength. This method quantifies fluorescently-labeled neurotransmitter receptors in three dimensions with single-synapse resolution in C. elegans, allowing hundreds of synapses to be rapidly characterized within a single sample without distortions introduced by z-plane projection.

Studying Synaptic Vesicle Pools using Photoconversion of Styryl Dyes

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Cited by 18 •

2010

FM dyes have been of invaluable help in the understanding of synaptic dynamics. FMs are normally followed under the fluorescent microscope during different stimulation conditions. However, photoconversion of FM dyes combined with electron microscopy allows the visualization of distinct synaptic vesicle pools, among other ultrastructure components, in synaptic boutons.

Analyzing Synaptic Vesicle Recycling and Fluorescent Dye Uptake in Drosophila Larvae

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2025

This video demonstrates a protocol to study synaptic vesicle recycling at neuromuscular junctions in channelrhodopsin-expressing Drosophila larvae using a fluorescent dye. Blue light activates the channelrhodopsins, causing calcium influx and synaptic vesicle exocytosis. The dye integrates into the neuronal membranes and is internalized during endocytosis, resulting in enhanced fluorescence. Further blue light stimulation induces exocytosis and dye release, which is shown by reduced...

Drosophila Neuromuscular Junction (NMJ) Quantification: A Method to Assess Synaptic Morphology and Function

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2023

The Drosophila neuromuscular junction (NMJ) is used as a model to study the morphology and function of synapses. This video describes important features that researchers quantify to characterize the NMJ. The example protocol demonstrates a software able to perform the quantification automatically.

Fluorescence Imaging of Synaptic Calcium Dynamics in an In Vitro Model of Amyotrophic Lateral Sclerosis

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2025

Source: Krishnamurthy, K. et al. Real-Time Fluorescent Measurement of Synaptic Functions in Models of Amyotrophic Lateral Sclerosis. J. Vis. Exp. (2021)This video demonstrates real-time calcium imaging to monitor synaptic activity in ALS-mutant neurons expressing a genetically encoded calcium biosensor. It outlines the steps for preparing the neurons for imaging, stimulating calcium dynamics, and recording fluorescence to measure real-time changes in intracellular calcium levels, which reflect...

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