Tetraethyl Rodine Dextrin

Tetraethyl Rodine Dextrin, commonly referring to tetraethyl rhodamine dextran, is a fluorescent dextran-based tracer used to label and visualize neuronal structures, making cellular connectivity and transport pathways accessible for study. After introduction into neural tissue or individual cells, the dye-conjugated polysaccharide remains detectable by fluorescence microscopy and can be carried through neuronal processes, revealing the distribution of labeled compartments. In neuroscience, this approach supports analysis of axonal projections, neuronal morphology, circuit organization, and transport dynamics. Its compatibility with microscopic imaging enables researchers to compare labeling patterns across experimental conditions and relate cellular structure to neural function.

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Research

JoVE Journal - Neuroscience

Laser-guided Neuronal Tracing In Brain Explants

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2015

We describe a technique to label neurons and their processes via anterograde or retrograde tracer injections into brain nuclei using an in vitro preparation. We modified an existing method of in vitro tracer electroporation by taking advantage of fluorescently labeled mouse mutants and basic optical equipment in order to increase labeling accuracy.

In vivo Ca2+- Imaging of Mushroom Body Neurons During Olfactory Learning in the Honey Bee

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Cited by 13 •

2009

Bees can be conditioned in an appetitive olfactory learning paradigm (PER-conditioning). Using odors as stimuli, we established a method in which behavior is recorded while simultaneously Calcium Imaging is used to measure odor evoked activity in mushroom body neurons in vivo.

Chemotherapy-induced Vascular Toxicity - Real-time In vivo Imaging of Vessel Impairment

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Cited by 11 •

2015

We herein describe the method of fibered confocal fluorescent microscopy (FCFM) based imaging, which provides an innovative mode to understand physiological phenomena at the cellular and sub-cellular levels in animal subjects.

Characteristics of Precipitation-formed Polyethylene Glycol Microgels Are Controlled by Molecular Weight of Reactants

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Cited by 5 •

2013

This work describes the formation of poly(ethylene glycol) (PEG) microgels via a photopolymerized precipitation reaction. Increasing the PEG molecular weight increased microgel diameter and swelling ratio. Simple adaptations to the PEG microgel precipitation reaction are explored for future applications of microgels as drug delivery vehicles and tissue engineering scaffolds.

Intravital Microscopy of the Microcirculation in the Mouse Cremaster Muscle for the Analysis of Peripheral Stem Cell Migration

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Cited by 4 •

2013

Intravital microscopy of the mouse M. cremaster microcirculation offers a unique and well-standardized in vivo model for the analysis of peripheral bone marrow stem cell migration.

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