Synaptophysin-morange

Synaptophysin-mOrange is a fluorescent fusion protein used to label synaptic vesicles and visualize presynaptic structures in living neurons. By combining synaptophysin, a synaptic-vesicle membrane protein, with the fluorescent protein mOrange, the construct is targeted to vesicle membranes and emits orange fluorescence when illuminated at suitable wavelengths. This signal allows researchers to identify synaptic terminals, monitor vesicle distribution, and track changes in presynaptic organization over time. In neuroscience, Synaptophysin-mOrange supports live-cell imaging of neuronal connectivity and synaptic dynamics, helping investigators study how neural circuits develop, communicate, and respond to experimental manipulation.

Synaptophysin-morange - Related Videos

Research

JoVE Journal - Cancer Research

Identification and Characterization of Metastatic Factors by Gene Transfer into the Novel RIP-Tag; RIP-tva Murine Model

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Cited by 10 •

2017

We present a protocol to demonstrate a novel somatic gene transfer system utilizing RIP-Tag; RIP-tva mouse model to study the function of genes in metastasis. The avian retroviruses are delivered intracardiacally to ensure gene transfer into pre-malignant, noninvasive lesions of pancreatic β cells in adult mice.

Preparing Cultured Neurons for Optical Analysis of Recycled Synaptic Vesicles

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2025

This video demonstrates the procedure for preparing cultured neurons for optical analysis of recycled synaptic vesicles. The process involves fluorescence tagging of synaptic vesicle proteins and immunostaining to label and visualize the recycled vesicles within the neurons.

Physiological, Morphological and Neurochemical Characterization of Neurons Modulated by Movement

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2011

A technique is described to quantify the in vivo physiological response of mammalian neurons during movement and correlate the physiology of the neuron with neuronal morphology, neurochemical phenotype and synaptic microcircuitry.

Research

JoVE Journal - Neuroscience
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Split Retina as an Improved Flatmount Preparation for Studying Inner Nuclear Layer Neurons in Vertebrate Retina

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2024

This work presents an alternative flatmount retina preparation in which the removal of photoreceptor cell bodies enables faster antibody diffusion and improved patch pipette access to inner retinal neurons for immunohistochemistry, in situ hybridization, and electrophysiology experiments.

Brain Membrane Fractionation: An Ex Vivo Approach to Assess Subsynaptic Protein Localization

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Cited by 6 •

2017

Here, we present a brain membrane fractionation protocol that represents a robust procedure to isolate proteins belonging to different synaptic compartments.

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