Related Experiment Video
Updated: Sep 22, 2026

Repetitive Transcranial Magnetic Stimulation to the Unilateral Hemisphere of Rat Brain
Published on: October 22, 2016
Single-Nucleus Transcriptomic Mapping Reveals Correlative Microglial Changes Associated with rTMS in the Motor Cortex
Kunlong Zhang1, Xinjiang Yang1,2,3, Ruibin Hou1
1Department of Rehabilitation Medicine, Xijing Hospital, Fourth Military Medical University, Xi'an, People's Republic of China.
Background:
Spinal cord injury (SCI)-associated neuropathic pain (NP) is a severely disabling complication with limited treatment options. Although spinal microglial activation is well documented in SCI-NP, the functional role of microglia in the primary motor cortex (M1) and their response to repetitive transcranial magnetic stimulation (rTMS) remain poorly understood.
Methods:
Single-nucleus RNA sequencing (snRNA-seq) was performed on M1 tissues from Sham, SCI, and SCI+rTMS mice to identify transcriptionally distinct microglial states. Differential expression analysis, GO/KEGG pathway enrichment, and CellChat-based cell-cell communication mapping were used to characterize phenotypic changes, key signaling pathways, and intercellular crosstalk underlying microglial responses to SCI and rTMS. Real Time Quantitative PCR (RT-qPCR) and immunofluorescence were employed to validate microglial marker expression. Behavioral assessments included the Basso Mouse Scale (BMS) for locomotor function, as well as von Frey and Hargreaves tests to evaluate mechanical allodynia and thermal hyperalgesia.
Results:
SCI did not alter overall cellular composition in the M1 cortex but was associated with microglial transcriptional changes suggesting transformation toward a pro-inflammatory state, with the CX3C pathway identified as a potential mediator. Whereas rTMS was correlated with a shift toward an anti-inflammatory/repair state. These findings were validated by iNOS/Arg1 and Aif1/Cx3cr1 immunofluorescence, RT-qPCR, and behavioral assays, which together were consistent with SCI severity and rTMS-associated analgesia.
Conclusion:
Our snRNA-seq analysis identifies M1 cortical microglial transcriptional and communication changes that correlate with SCI-induced NP. rTMS correlates with reduced pro-inflammatory microglial signaling and enhanced repair-associated transcriptional programs. However, as these findings are correlational and do not establish causation, they provide a hypothesis-generating preclinical foundation for future mechanistic studies targeting cortical microglia with rTMS.

