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.

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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