Related Experiment Video
Updated: May 21, 2025

Intravital Imaging of Axonal Interactions with Microglia and Macrophages in a Mouse Dorsal Column Crush Injury
Published on: November 23, 2014
Redefining macrophage phenotypes after spinal cord injury: An open data approach
Fernanda Stapenhorst França1, John C Gensel1
1Spinal Cord and Brain Injury Research Center and Department of Physiology, College of Medicine, University of Kentucky, Lexington, KY, United States.
Abstract:
Spinal cord injury (SCI) triggers intraspinal inflammation through an influx of blood-derived inflammatory cells such as neutrophils and monocyte-derived macrophages. Macrophages play a complex role in SCI pathophysiology ranging from potentiating secondary injury to facilitating recovery and wound healing. In vitro, macrophages have been classified as having a pro-inflammatory, M1 phenotype, or a regenerative, M2 phenotype. In vivo, however, studies suggest that macrophages exist in a spectrum of phenotypes and can shift from one phenotype to another. Single-cell RNA sequencing (scRNA-seq) allows us to assess immune cell heterogeneity in the spinal cord after injury, and several groups have created publicly available datasets containing valuable data for further exploration. In this study, we compared three different scRNA-seq datasets and analyzed macrophage heterogeneity after SCI based on cell clustering according to gene expression profiles. We analyzed data from 7 days post injury (dpi) in young female mice that received a mid-thoracic SCI contusion. Using the Seurat pipeline, we clustered cells, subsetted macrophages from microglia and other myeloid cells, and identified different macrophage populations. Using SingleR as a cross-dataset cluster comparison tool, we identified similarities in macrophage populations across datasets. To confirm and refine this analysis, we analyzed the top 10 differentially expressed genes for each population in each dataset. Most clusters identified in the SingleR analysis were confirmed to have a unique genetic signature and were consistently present in all datasets analyzed. Taken together, four distinct macrophage populations were consistently identified after SCI at 7 dpi in three datasets from independent research teams. Our identification of biologically conserved macrophage populations after SCI using an unbiased approach highlights the power of data sharing and open data in redefining macrophage heterogeneity.
Insights
Spinal cord injury (SCI) triggers inflammation. Researchers identified four distinct macrophage populations after SCI using single-cell RNA sequencing, revealing conserved immune cell heterogeneity and supporting open data sharing for further research.
Area of Science:
- Neuroscience
- Immunology
- Bioinformatics
Background:
- Spinal cord injury (SCI) induces inflammation via infiltrating immune cells, notably macrophages.
- Macrophages exhibit diverse roles in SCI, from exacerbating injury to promoting repair, with phenotypes ranging from M1 (pro-inflammatory) to M2 (regenerative).
- In vivo, macrophage phenotypes exist on a spectrum and can transition, necessitating advanced methods to study their heterogeneity.
Purpose of the Study:
- To analyze macrophage heterogeneity in the spinal cord following injury using single-cell RNA sequencing (scRNA-seq) data.
- To compare and validate macrophage populations across multiple independent scRNA-seq datasets.
- To identify conserved macrophage populations after SCI using an unbiased, data-driven approach.
Main Methods:
- Utilized three publicly available scRNA-seq datasets from mice 7 days post-mid-thoracic contusion SCI.
- Employed the Seurat pipeline for cell clustering and subsetting macrophages from other myeloid cells.
- Used SingleR for cross-dataset comparison of macrophage populations and analyzed differentially expressed genes to confirm population signatures.
Main Results:
- Identified distinct macrophage populations within the injured spinal cord across all analyzed datasets.
- Confirmed unique genetic signatures for most identified macrophage clusters, demonstrating consistency across independent studies.
- Consistently identified four distinct macrophage populations 7 days post-SCI, irrespective of the dataset.
Conclusions:
- Four distinct, biologically conserved macrophage populations emerge after SCI at 7 days post-injury.
- This study underscores the power of data sharing and open data initiatives in unraveling complex immune cell heterogeneity.
- The findings provide a refined understanding of macrophage roles in SCI pathophysiology and potential therapeutic targets.
More Related Videos
13:28Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
08:52Neuron-Macrophage Co-cultures to Activate Macrophages Secreting Molecular Factors with Neurite Outgrowth Activity
Published on: March 30, 2018