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Visceral hypersensitivity induced by optogenetic activation of the amygdala in conscious rats
Anthony C Johnson1, Rocco Latorre1, Casey O Ligon1
1Oklahoma Center for Neuroscience , Oklahoma City, Oklahoma.
Abstract:
In vivo optogenetics identifies brain circuits controlling behaviors in conscious animals by using light to alter neuronal function and offers a novel tool to study the brain-gut axis. Using adenoviral-mediated expression, we aimed to investigate whether photoactivation with channelrhodopsin (ChR2) or photoinhibition with halorhodopsin (HR3.0) of fibers originating from the central nucleus of the amygdala (CeA) at the bed nucleus of the stria terminalis (BNST) had any effect on colonic sensitivity. We also investigated whether there was any deleterious effect of the adenovirus on the neuronal population or the neuronal phenotype within the CeA-BNST circuitry activated during the optogenetic stimulation. In male rats, the CeA was infected with vectors expressing ChR2 or HR3.0 and fiber optic cannulae were implanted on the BNST. After 8-10 wk, the response to graded, isobaric colonic distension was measured with and without laser stimulation of CeA fibers at the BNST. Immunohistochemistry and histology were used to evaluate vector expression, neuronal integrity, and neurochemical phenotype. Photoactivation of CeA fibers at the BNST with ChR2 induced colonic hypersensitivity, whereas photoinhibition of CeA fibers at the BNST with HR3.0 had no effect on colonic sensitivity. Control groups treated with virus expressing reporter proteins showed no abnormalities in neuronal morphology, neuronal number, or neurochemical phenotype following laser stimulation. Our experimental findings reveal that optogenetic activation of discrete brain nuclei can be used to advance our understanding of complex visceral nociceptive circuitry in a freely moving rat model. NEW & NOTEWORTHY Our findings reveal that optogenetic technology can be employed as a tool to advance understanding of the brain-gut axis. Using adenoviral-mediated expression of opsins, which were activated by laser light and targeted by fiber optic cannulae, we examined central nociceptive circuits mediating visceral pain in a freely moving rat. Photoactivation of amygdala fibers in the stria terminalis with channelrhodopsin induced colonic hypersensitivity, whereas inhibition of the same fibers with halorhodopsin did not alter colonic sensitivity.
Insights
Optogenetic activation of amygdala fibers in the brain-gut axis induced colonic hypersensitivity in rats. This study demonstrates optogenetics as a tool to understand visceral pain circuits without causing harm.
Area of Science:
- Neuroscience
- Gastroenterology
- Optogenetics
Background:
- The brain-gut axis plays a crucial role in regulating visceral functions and pain perception.
- Optogenetics offers a powerful method to investigate neural circuit function in vivo.
Purpose of the Study:
- To investigate the role of the central nucleus of the amygdala (CeA) projecting to the bed nucleus of the stria terminalis (BNST) in colonic sensitivity using optogenetics.
- To assess the safety and specificity of adenoviral-mediated optogenetic tools in the CeA-BNST circuitry.
Main Methods:
- Adenoviral vectors expressing channelrhodopsin (ChR2) or halorhodopsin (HR3.0) were used to target CeA neurons projecting to the BNST in male rats.
- Colonic sensitivity was measured via graded colonic distension during optogenetic photoactivation or photoinhibition.
- Immunohistochemistry and histology were performed to evaluate neuronal integrity and phenotype.
Main Results:
- Photoactivation of CeA fibers at the BNST using ChR2 significantly increased colonic sensitivity, inducing hypersensitivity.
- Photoinhibition of CeA fibers at the BNST using HR3.0 did not affect colonic sensitivity.
- Adenoviral vector expression and optogenetic stimulation did not cause deleterious effects on neuronal populations or phenotypes.
Conclusions:
- Optogenetic activation of the CeA-BNST pathway enhances visceral pain signaling, suggesting its involvement in colonic sensitivity.
- Optogenetics is a viable and safe tool for dissecting neural circuits underlying visceral pain and the brain-gut axis in freely moving animals.
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