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Ex Vivo Optogenetic Dissection of Fear Circuits in Brain Slices
Published on: April 5, 2016
Ex Vivo Optogenetic Dissection of Fear Circuits in Brain Slices
Daniel Bosch1, Douglas Asede2, Ingrid Ehrlich3
1Hertie Institute for Clinical Brain Research and Werner Reichardt Centre for Integrative Neuroscience, University of Tuebingen.
Abstract:
Optogenetic approaches are now widely used to study the function of neural populations and circuits by combining targeted expression of light-activated proteins and subsequent manipulation of neural activity by light. Channelrhodopsins (ChRs) are light-gated cation-channels and when fused to a fluorescent protein their expression allows for visualization and concurrent activation of specific cell types and their axonal projections in defined areas of the brain. Via stereotactic injection of viral vectors, ChR fusion proteins can be constitutively or conditionally expressed in specific cells of a defined brain region, and their axonal projections can subsequently be studied anatomically and functionally via ex vivo optogenetic activation in brain slices. This is of particular importance when aiming to understand synaptic properties of connections that could not be addressed with conventional electrical stimulation approaches, or in identifying novel afferent and efferent connectivity that was previously poorly understood. Here, a few examples illustrate how this technique can be applied to investigate these questions to elucidating fear-related circuits in the amygdala. The amygdala is a key region for acquisition and expression of fear, and storage of fear and emotional memories. Many lines of evidence suggest that the medial prefrontal cortex (mPFC) participates in different aspects of fear acquisition and extinction, but its precise connectivity with the amygdala is just starting to be understood. First, it is shown how ex vivo optogenetic activation can be used to study aspects of synaptic communication between mPFC afferents and target cells in the basolateral amygdala (BLA). Furthermore, it is illustrated how this ex vivo optogenetic approach can be applied to assess novel connectivity patterns using a group of GABAergic neurons in the amygdala, the paracapsular intercalated cell cluster (mpITC), as an example.
Insights
Optogenetics using channelrhodopsins (ChRs) allows researchers to visualize and activate specific neurons. This technique helps elucidate complex neural circuits, such as fear pathways in the amygdala.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Optogenetics enables targeted manipulation of neural activity using light-activated proteins like channelrhodopsins (ChRs).
- Viral vectors facilitate the expression of ChR-fluorescent protein fusions in specific brain regions for visualization and activation.
- Studying synaptic properties and novel connectivity is crucial for understanding neural circuits.
Purpose of the Study:
- To demonstrate the application of ex vivo optogenetics for studying neural circuits.
- To investigate synaptic communication between the medial prefrontal cortex (mPFC) and the basolateral amygdala (BLA).
- To explore novel connectivity patterns involving the amygdala's paracapsular intercalated cell cluster (mpITC).
Main Methods:
- Stereotactic injection of viral vectors to express ChR fusion proteins.
- Ex vivo optogenetic activation in brain slices for functional analysis.
- Anatomical and functional assessment of axonal projections.
Main Results:
- Ex vivo optogenetics successfully studied synaptic communication between mPFC afferents and BLA target cells.
- The technique revealed insights into the connectivity of the mpITC, a GABAergic neuronal group in the amygdala.
- Optogenetic activation allowed functional interrogation of previously poorly understood connections.
Conclusions:
- Ex vivo optogenetics is a powerful tool for dissecting neural circuits, particularly in regions like the amygdala.
- This method facilitates the study of synaptic properties and novel connectivity patterns.
- The findings contribute to a better understanding of fear-related circuits involving the mPFC and amygdala.
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