Brainbow 2.1 Line

The Brainbow 2.1 Line is a transgenic labeling system that assigns distinct fluorescent colors to individual cells, enabling researchers to distinguish neighboring neurons and trace their development. In this line, Cre recombinase drives stochastic recombination among differentially configured lox sites, producing varied combinations and levels of fluorescent protein expression in genetically targeted cells. Multicolor labeling supports developmental biology studies of neuronal lineage, migration, morphology, and connectivity by revealing how cells arise, organize, and form circuits over time. Brainbow 2.1 provides a powerful approach for resolving complex cellular architectures that are difficult to distinguish with single-color markers.

Brainbow 2.1 Line - Related Videos

Research

JoVE Journal - Developmental Biology

Visualizing the Developing Brain in Living Zebrafish using Brainbow and Time-lapse Confocal Imaging

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Cited by 6 •

2020

In vivo imaging is a powerful tool that can be used to investigate the cellular mechanisms underlying nervous system development. Here we describe a technique for using time-lapse confocal microscopy to visualize large numbers of multicolor Brainbow-labeled cells in real time within the developing zebrafish nervous system.

Research

JoVE Journal - Cancer Research
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Natural Killer (NK) and CAR-NK Cell Expansion Method using Membrane Bound-IL-21-Modified B Cell Line

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Cited by 7 •

2022

Here, we present a method to expand peripheral blood natural killer (PBNK), NK cells from liver tissues, and chimeric antigen receptor (CAR)-NK cells derived from peripheral blood mononuclear cells (PBMCs) or cord blood (CB). This protocol demonstrates the expansion of NK and CAR-NK cells using 221-mIL-21 feeder cells in addition to the optimized purity of expanded NK cells.

A Method for Lineage Tracing of Corneal Cells Using Multi-color Fluorescent Reporter Mice

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Cited by 15 •

2015

In this article we describe the principles for designing and performing a multi-color lineage tracing experiment using R26R-Confetti mice. We provide a specific protocol for tracking corneal epithelial cells which can be modified for other tissues of interest.

Long-Term Imaging of Identified Neural Populations using Microprisms in Freely Moving and Head-Fixed Animals

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2024

When integrated with a head-plate and an optical design compatible with both single- and two-photon microscopes, the microprism lens presents a significant advantage in measuring neural responses in a vertical column under diverse conditions, including well-controlled experiments in head-fixed states or natural behavioral tasks in freely moving animals.

Low-Cost Alternative for Examining Social Preference in Zebrafish (Danio rerio) Using the 3-Chamber Open-Tank Free-Swim Task

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2026

Multi-chamber social preference tasks have been adapted from rodents to zebrafish, facilitating the study of social behavior in model organisms. This protocol validates a low-cost 3-chamber open-tank task using webcams and open-source software to measure zebrafish social preference, making it accessible to undergraduate research and teaching.

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