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Updated: Nov 22, 2025

Author Spotlight: Methodologies and Advancements of Chronic Pain Management Research
Published on: January 5, 2024
Chronic generalized pain disrupts whole brain functional connectivity in mice
Md Taufiq Nasseef1, Weiya Ma1, Jai Puneet Singh1
1Douglas Hospital Research Center, Department of Psychiatry, School of Medicine, McGill University, Montreal, Quebec, Canada.
Abstract:
Fibromyalgia (FM) is a generalized chronic pain condition whose pathophysiology is poorly understood, and both basic and translational research are needed to advance the field. Here we used the Sluka model to test whether FM-like pain in mice would produce detectable brain modifications using resting-state (rs) functional Magnetic Resonance Imaging (fMRI). Mice received intramuscular acid saline treatment, images were acquired at 7 T 5 days post-treatment, and pain thresholds tested 3 weeks post-scanning. Data-driven Independent Component Analysis revealed significant reduction of functional connectivity (FC) across several component pairs, with major changes for the Retrosplenial cortex (RSP) central to the default mode network, and to a lesser extent the Periaqueductal gray (PAG), a key pain processing area. Seed-to-seed analysis focused on 14 pain-related areas showed strongest FC reduction for RSP with several cortical areas (somatosensory, prefrontal and insular), and for PAG with both cortical (somatosensory) and subcortical (habenula, thalamus, parabrachial nucleus) areas. RSP-PAG FC was also reduced, and this decreased FC tended to be positively correlated with pain levels at individual subject level. Finally, seed-voxelwise analysis focused on PAG confirmed seed-to-seed findings and, also detected reduced PAG FC with the anterior cingulate cortex, increasingly studied in aversive pain effects. In conclusion, FM-like pain triggers FC alterations in the mouse, which are detected by rs-fMRI and are reminiscent of some human findings. The study reveals the causal fingerprint of FM-like pain in rodents, and indicates that both RSP and PAG connectional patterns could be suitable biomarkers, with mechanistic and translational value, for further investigations.
Insights
Fibromyalgia-like pain in mice causes brain functional connectivity changes, particularly in the Retrosplenial cortex and Periaqueductal gray. These alterations, detected by resting-state fMRI, may serve as biomarkers for chronic pain research.
Area of Science:
- Neuroscience
- Pain Research
- Medical Imaging
Background:
- Fibromyalgia (FM) is a chronic pain condition with poorly understood mechanisms.
- Advancing FM research requires basic and translational studies.
- Resting-state functional Magnetic Resonance Imaging (rs-fMRI) can detect brain functional connectivity (FC).
Purpose of the Study:
- To investigate brain modifications in a rodent model of fibromyalgia-like pain using rs-fMRI.
- To identify potential brain-based biomarkers for FM.
Main Methods:
- Utilized the Sluka mouse model for fibromyalgia-like pain induction via acid saline injection.
- Acquired 7 Tesla rs-fMRI data 5 days post-treatment.
- Analyzed functional connectivity using Independent Component Analysis (ICA) and seed-based analyses.
Main Results:
- Significant reductions in functional connectivity were observed in several brain networks.
- Key areas showing reduced FC included the Retrosplenial cortex (RSP) and Periaqueductal gray (PAG).
- Decreased FC between RSP and cortical areas, and between PAG and cortical/subcortical areas, was noted. RSP-PAG FC reduction correlated with pain levels.
Conclusions:
- Fibromyalgia-like pain induces detectable functional connectivity alterations in the mouse brain.
- rs-fMRI can identify these changes, mirroring some human findings.
- RSP and PAG connectional patterns show promise as mechanistic and translational biomarkers for FM research.

