Chronos Chrimsonr

Chronos and ChrimsonR are light-sensitive microbial opsins used in optogenetics to control neuronal activity with different wavelengths of light. When illuminated, these engineered cation channels open in the membrane, allowing ion influx that depolarizes and activates expressing neurons; Chronos responds primarily to blue light, whereas ChrimsonR is activated by red light. Their distinct spectral sensitivities and rapid channel kinetics enable researchers to stimulate multiple neuronal populations independently within the same circuit. This spectral multiplexing supports studies of neural connectivity, circuit function, and behavior, while improving the precision of experimental control in neuroscience and advancing strategies for dissecting complex brain networks.

Chronos Chrimsonr - Related Videos

Research

JoVE Journal - Neuroscience

Whole-cell Patch-clamp Recordings for Electrophysiological Determination of Ion Selectivity in Channelrhodopsins

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Cited by 26 •

2017

This article describes how the ion selectivity of channelrhodopsin is determined with electrophysiological whole-cell patch-clamp recordings using HEK293 cells. Here, the experimental procedure for investigating chloride selectivity of an anion-selective channelrhodopsin is demonstrated. However, the procedure is transferable to other channelrhodopsins of distinct selectivity.

Long-range Channelrhodopsin-assisted Circuit Mapping of Inferior Colliculus Neurons with Blue and Red-shifted Channelrhodopsins

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Cited by 4 •

2020

Channelrhodopsin-assisted circuit mapping (CRACM) is a precision technique for functional mapping of long-range neuronal projections between anatomically and/or genetically identified groups of neurons. Here, we describe how to utilize CRACM to map auditory brainstem connections, including the use of a red-shifted opsin, ChrimsonR.

FM Dye Cycling at the Synapse: Comparing High Potassium Depolarization, Electrical and Channelrhodopsin Stimulation

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Cited by 7 •

2018

Synaptic vesicle (SV) cycling is the core mechanism of intercellular communication at neuronal synapses. FM dye uptake and release are the primary means of quantitatively assaying SV endo- and exocytosis. Here, we compare all the stimulation methods to drive FM1-43 cycling at the Drosophila neuromuscular junction (NMJ) model synapse.

Drosophila Optogenetics: A Method to Manipulate Neuronal Circuits

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2023

Optogenetics enables the use of light to manipulate neurons that are genetically engineered to express specific opsins–light-sensitive proteins whose light activation triggers a change in the state of the neuron. Here we describe an optogenetic approach in Drosophila using the opsin Channelrhodopsin2. The example protocol features an optogenetics assay set to study the neuronal circuitry behind the fly's escape behavior.

Photostimulation and Whole-Cell Patch Clamp Recordings of Neurons in Mouse Hippocampal Slices

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2025

The video demonstrates a protocol to study synaptic interactions and neuronal responses in a transfected mouse hippocampal brain slice. It involves illuminating long-range sensory neurons to trigger action potentials and recording the resulting excitatory post-synaptic potentials in the recorded neuron using the whole-cell patch-clamp technique.

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