Phluorin Imaging

Phluorin imaging is a fluorescence-based technique that monitors changes in intracellular or organelle pH, making it especially useful for studying neuronal signaling. It uses genetically encoded pH-sensitive fluorescent proteins, such as pHluorin, whose brightness changes as proton concentration shifts; in synaptic vesicles, fluorescence increases when exocytosis exposes the probe to the neutral extracellular environment and decreases after endocytosis and vesicle reacidification. This approach allows researchers to visualize synaptic vesicle cycling, quantify neurotransmitter release and retrieval, and examine how neuronal activity regulates presynaptic function. Phluorin imaging therefore provides a direct optical readout of dynamic membrane trafficking in living neurons.

Phluorin Imaging - Related Videos

Research

JoVE Journal - Biology

Confocal Imaging of Neuropeptide Y-pHluorin: A Technique to Visualize Insulin Granule Exocytosis in Intact Murine and Human Islets

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Cited by 12 •

2017

We describe a protocol for visualization of insulin exocytosis in intact islets using pHluorin, a pH-sensitive green fluorescent protein. Isolated islets are infected with adenovirus encoding pHluorin coupled to the vesicle cargo neuropeptide Y. This allows for the detection of insulin granule fusion events by confocal microscopy.

Imaging pHluorin-tagged Receptor Insertion to the Plasma Membrane in Primary Cultured Mouse Neurons

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Cited by 8 •

2012

By tagging the extracellular domains of membrane receptors with superecliptic pHluorin, and by imaging these fusion receptors in cultured mouse neurons, we can directly visualize individual vesicular insertion events of the receptors to the plasma membrane. This technique will be instrumental in elucidating the molecular mechanisms governing receptor insertion to the plasma membrane.

Utilizing pHluorin-tagged Receptors to Monitor Subcellular Localization and Trafficking

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Cited by 3 •

2017

Labeling the extracellular domain of a membrane protein with a pH sensitive fluorophore, superecliptic pHluorin (SEP), allows subcellular localization, expression, and trafficking to be determined. Imaging SEP-labeled proteins with total internal reflection fluorescence microscopy (TIRFM) enables the quantification of protein levels in the peripheral ER and plasma membrane.

Applications of pHluorin for Quantitative, Kinetic and High-throughput Analysis of Endocytosis in Budding Yeast

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Cited by 18 •

2016

Accurate quantification of vesicular trafficking events often provides key insights into roles for specific proteins and the effects of mutations. This paper presents methods for using superecliptic pHluorin, a pH-sensitive GFP variant, as a tool for quantification of endocytic events in living cells using quantitative fluorescence microscopy and flow cytometry.

Use of pHluorin to Assess the Dynamics of Axon Guidance Receptors in Cell Culture and in the Chick Embryo

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Cited by 10 •

2014

We describe here the use of a pH-sensitive green fluorescent protein variant, pHluorin, to study the spatio-temporal dynamics of axon guidance receptors trafficking at the cell surface. The pHluorin-tagged receptor is expressed both in cell culture and in vivo, using electroporation of the chick embryo.

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