Mouse fMRI under ketamine and xylazine anesthesia: Robust contralateral somatosensory cortex activation in response

Hyun-Ji Shim1, Won Beom Jung2, Felix Schlegel3

  • 1Cener for Neuroscience Imaging Research (CNIR), Institute for Basic Science (IBS), Suwon 16419, Republic of Korea; Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul 06351, Republic of Korea.

Neuroimage
|May 7, 2018
PubMed

Insights

This study optimized anesthesia for mouse fMRI, revealing consistent somatosensory responses in the brain. Resting-state functional connectivity predicts evoked responses, improving reliability for mapping mouse model functions.

Area of Science:

  • Neuroscience
  • Medical Imaging

Background:

  • Mouse functional magnetic resonance imaging (fMRI) is vital for studying neurological functions in disease models.
  • Previous studies reported inconsistent and widespread somatosensory-evoked responses in anesthetized mice.

Purpose of the Study:

  • To develop a reliable mouse fMRI protocol for mapping brain functions.
  • To optimize anesthetic conditions and stimulation parameters for consistent somatosensory-evoked responses.

Main Methods:

  • Utilized a ketamine and xylazine anesthetic mixture for mouse fMRI at 9.4T.
  • Optimized forepaw stimulation frequency (4 Hz, 0.5 ms, 0.5 mA) using cerebral blood volume (CBV)-weighted optical imaging and BOLD fMRI.
  • Analyzed blood-oxygen-level dependent (BOLD) activity in response to forepaw stimulation and correlated evoked responses with resting-state fMRI (rsfMRI) functional connectivity (FC).

Main Results:

  • A 4 Hz forepaw stimulation protocol yielded consistent, localized BOLD activity in the contralateral primary forelimb somatosensory cortex (S1FL) and thalamus.
  • Evoked fMRI responses in S1FL positively correlated with rsfMRI FC between bilateral S1FL and negatively with FC to the anterior cingulate cortex.
  • Reproducible S1FL activity was observed across three weekly fMRI scans with a 70-95% success rate.

Conclusions:

  • The developed ketamine/xylazine fMRI protocol provides a reliable method for mapping somatosensory functions in mouse models.
  • rsfMRI functional connectivity serves as a valuable index for assessing evoked fMRI response reliability and animal condition.
  • This optimized protocol enhances the utility of mouse fMRI for preclinical research.

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