Enhancer-trap Flp

Enhancer-trap Flp is a genetic targeting system that uses regulatory DNA activity to label or manipulate specific cell populations, making it valuable for precise studies of neural circuits. In this approach, an enhancer trap drives expression of Flp recombinase in cells where the captured enhancer is active; Flp then recognizes FRT sites and excises or inverts an intervening DNA sequence, depending on their orientation. Researchers can combine this system with FRT-dependent reporters, effectors, or intersectional genetic strategies to identify and control defined neuronal populations. Enhancer-trap Flp supports circuit mapping, developmental studies, and investigations of how genetically distinct neurons contribute to behavior and brain function.

Enhancer-trap Flp - Related Videos

Research

JoVE Journal - Engineering

Polycrystalline Silicon Thin-film Solar cells with Plasmonic-enhanced Light-trapping

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Cited by 9 •

2012

Polycrystalline silicon thin-film solar cells on glass are fabricated by deposition of boron and phosphorous doped silicon layers followed by crystallisation, defect passivation and metallisation. Plasmonic light-trapping is introduced by forming Ag nanoparticles on the silicon cell surface capped with a diffused reflector resulting in ~45% photocurrent enhancement.

Research

JoVE Journal - Neuroscience
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Mapping and Application of Enhancer-trap Flippase Expression in Larval and Adult Drosophila CNS

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Cited by 7 •

2011

We describe a Flippase-induced intersectional Gal80/Gal4 repression (FINGR) method, allowing tissue-specific FLP to determine Gal80 expression patterns. Wherever Gal4 and FLP overlap, Gal4 expression is turned on (Gal80 flipped out) or off (Gal80 flipped in). The FINGR method is versatile for clonal analysis and neural circuit mapping.

Research

JoVE Journal - Neuroscience
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Targeting Olfactory Bulb Neurons Using Combined In Vivo Electroporation and Gal4-Based Enhancer Trap Zebrafish Lines

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Cited by 8 •

2011

The temporal and spatial resolution of genetic manipulations determines the spectrum of biological phenomena that they can perturb. Here we use temporally and spatially discrete in vivo electroporation, combined with transgenic lines of zebrafish, to induce expression of a GFP transgene specifically in neurons of the developing olfactory bulb.

TransFLP — A Method to Genetically Modify Vibrio cholerae Based on Natural Transformation and FLP-recombination

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Cited by 37 •

2012

A quick method to modify the genome of V. cholerae is described. These modifications include the deletion of single genes, gene clusters and genomic islands as well as the integration of short sequences (e.g. promoter elements or affinity-tag sequences). The method is based on the natural transformation and FLP-recombination.

Research

JoVE Journal - Biology
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Gene Trapping Using Gal4 in Zebrafish

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Cited by 19 •

2013

This protocol describes the method of gene trap insertional mutagenesis using Gal4-VP16 as the primary reporter and GFP/RFP as secondary reporters in zebrafish. Approximately one in ten high-expressing F0 fish yield gene trap progeny co-expressing GFP and RFP. The screening procedure can be readily scaled to adapt to the size of the laboratory performing the insertional mutagenesis screen.

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