研究目的
To investigate the link between brain-state changes and neural dynamics across different scales in anesthetized rats using a multimodal platform combining resting-state fMRI, cortical calcium recording, and pupillometry.
研究成果
The study identified a quasiglobal negative fMRI spatial pattern that was correlated with pupil dilation and served as a template to produce a brain-state fMRI index during anesthesia. The neurobiological relevance of the linkage between the time-varying fMRI-inferred brain state and the pupil dynamics was verified with concurrent recording of neuronal calcium oscillations in the cingulate cortex. The multimodal fMRI combining concurrent calcium recordings and pupillometry enables tracking brain state-dependent pupil dynamics and identifying unique cross-scale neuronal dynamic patterns under anesthesia.
研究不足
The study was conducted under anesthesia, which may limit the generalizability of the findings to awake states. The degree to which these brain-state changes can be investigated from the data obtained here is limited.
1:Experimental Design and Method Selection:
The study used a multimodal platform to acquire concurrent neuronal calcium signals from the cingulate cortex (GCaMP-based), pupillometry, and whole-brain fMRI in anesthetized rats.
2:Sample Selection and Data Sources:
Ten adult rats were used to acquire parallel pupillometry, cortical calcium recordings, and whole-brain fMRI.
3:List of Experimental Equipment and Materials:
A small MRI-compatible camera to track pupil dynamics, optical fiber calcium recording, and whole-brain fMRI imaging.
4:Experimental Procedures and Operational Workflow:
The vector representing the pupil-size fluctuation was generated from the acquired video and correlated with each fMRI voxel time course to obtain a pupil–fMRI correlation map.
5:Data Analysis Methods:
The study included temporal correlation between the pupil dynamics and the fMRI signals, spatial correlation between each fMRI volume and the pupil–fMRI correlation map, and cross-correlation measures between the whole-brain fMRI, the calcium signal at 2 to 3 Hz or baseline, and the pupil size/pupil dilations.
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