Related Experiment Video
Updated: May 13, 2026

Identifying Microglia and Peripheral Infiltrating Macrophages in the Injured Spinal Cords Using Flow Cytometry
Published on: June 24, 2025
SPARC regulates microgliosis and functional recovery following cortical ischemia
Samantha M Lloyd-Burton1, Elisa M York, Mohammad A Anwar
1Department of Zoology, Life Sciences Institute and Brain Research Centre, University of British Columbia, Vancouver, BC, V6T 1Z3, Canada.
Abstract:
Secreted protein acidic rich in cysteine (SPARC) is a matricellular protein that modulates the activity of growth factors, cytokines, and extracellular matrix to play multiple roles in tissue development and repair, such as cellular adhesion, migration, and proliferation. Throughout the CNS, SPARC is highly localized in mature ramified microglia, but its role in microglia--in development or during response to disease or injury--is not understood. In the postnatal brain, immature amoeboid myeloid precursors only induce SPARC expression after they cease proliferation and migration, and transform into mature, ramified resting microglia. SPARC null/CX3CR1-GFP reporter mice reveal that SPARC regulates the distribution and branching of mature microglia, with significant differences between cortical gray and white matter in both controls and SPARC nulls. Following ischemic and excitotoxic lesion, reactive, hypertrophic microglia rapidly downregulate and release SPARC at the lesion, concomitant with reactive, hypertrophic perilesion astrocytes upregulating SPARC. After photothrombotic stroke in the forelimb sensorimotor cortex, SPARC nulls demonstrate enhanced microgliosis in and around the lesion site, which accompanies significantly enhanced functional recovery by 32 d after lesion. Microglia from SPARC nulls also intrinsically proliferate at a greater rate in vitro--an enhanced effect that can be rescued by the addition of exogenous SPARC. SPARC is thus a novel regulator of microglial proliferation and structure, and, in addition to regulating glioma progression, may play an important role in differently regulating the gray and white matter microglial responses to CNS lesion--and modulating behavioral recovery--after injury.
Insights
Secreted protein acidic rich in cysteine (SPARC) regulates microglia structure and proliferation. SPARC deficiency enhances microglial response and functional recovery after CNS injury.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Secreted protein acidic rich in cysteine (SPARC) is a matricellular protein involved in tissue repair.
- SPARC is highly expressed in mature microglia within the central nervous system (CNS).
- The specific role of SPARC in microglial function during development or injury remains unclear.
Purpose of the Study:
- To investigate the function of SPARC in microglial structure and behavior.
- To determine SPARC's role in microglial responses to CNS injury and its impact on functional recovery.
Main Methods:
- Utilized SPARC null/CX3CR1-GFP reporter mice.
- Analyzed microglial distribution and branching in gray and white matter.
- Induced photothrombotic stroke to assess microglial response and functional recovery.
- Performed in vitro proliferation assays on microglia from SPARC null mice.
Main Results:
- SPARC influences the distribution and branching of mature microglia in the CNS.
- SPARC null mice exhibit enhanced microgliosis and significantly improved functional recovery after stroke.
- SPARC-deficient microglia show increased proliferation in vitro, which can be rescued by exogenous SPARC.
Conclusions:
- SPARC is a novel regulator of microglial proliferation and structural organization.
- SPARC modulates microglial responses in gray and white matter following CNS lesions.
- Targeting SPARC may influence microglial behavior and enhance behavioral recovery after brain injury.