Related Experiment Video
Updated: Jun 25, 2026

Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
L-PGDS-PGD2-DP1 Axis Regulates Phagocytosis by CD36+ MGs/MΦs That Are Exclusively Present Within Ischemic Areas After
Takayuki Nakagomi1,2, Aya Narita1, Hideaki Nishie3
1Institute for Advanced Medical Sciences, Hyogo Medical University, 1-1 Mukogawa-cho, Nishinomiya 663-8501, Japan.
Abstract:
Brain injuries, such as ischemic stroke, cause cell death. Although phagocytosis of cellular debris is mainly performed by microglia/macrophages (MGs/MΦs), excessive accumulation beyond their phagocytic capacities results in waste product buildup, delaying brain cell regeneration. Therefore, it is essential to increase the potential for waste product removal from damaged brains. Lipocalin-type prostaglandin D synthase (L-PGDS) is the primary synthase for prostaglandin D2 (PGD2) and has been reported as a scavenger of waste products. However, the mechanism by which the L-PGDS-PGD2 axis exerts such an effect remains unelucidated. In this study, using a mouse model of ischemic stroke, we found that L-PGDS and its downstream signaling pathway components, including PGD2 and PGD2 receptor DP1 (but not DP2), were significantly upregulated in ischemic areas. Immunohistochemistry revealed the predominant expression of L-PGDS in the leptomeninges of ischemic areas and high expression levels of DP1 in CD36+ MGs/MΦs that were specifically present within ischemic areas. Furthermore, PGD2 treatment promoted the conversion of MGs/MΦs into CD36+ scavenger types and increased phagocytic activities of CD36+ MGs/MΦs. Because CD36+ MGs/MΦs specifically appeared within ischemic areas after stroke, our findings suggest that the L-PGDS-PGD2-DP1 axis plays an important role in brain tissue repair by regulating phagocytic activities of CD36+ MGs/MΦs.
Insights
Lipocalin-type prostaglandin D synthase (L-PGDS) and prostaglandin D2 (PGD2) aid brain repair after stroke. This axis enhances scavenger cell activity, clearing debris and promoting regeneration in damaged brain tissue.
Area of Science:
- Neuroscience
- Immunology
- Biochemistry
Background:
- Brain injuries like ischemic stroke lead to cell death and waste buildup.
- Microglia/macrophages (MGs/MΦs) clear debris, but overload hinders brain regeneration.
- Efficient waste removal is crucial for damaged brain repair.
Purpose of the Study:
- To elucidate the mechanism of the L-PGDS-PGD2 axis in brain waste removal.
- To investigate the role of L-PGDS and its downstream pathway in ischemic stroke recovery.
Main Methods:
- Utilized a mouse model of ischemic stroke.
- Performed immunohistochemistry to analyze protein expression in ischemic brain areas.
- Administered PGD2 treatment to assess its effect on MGs/MΦs.
Main Results:
- L-PGDS, PGD2, and DP1 receptor were upregulated in ischemic areas.
- L-PGDS was mainly expressed in leptomeninges; DP1 was highly expressed in CD36+ MGs/MΦs within ischemic regions.
- PGD2 treatment enhanced MGs/MΦs conversion to CD36+ scavenger types and boosted their phagocytic activity.
Conclusions:
- The L-PGDS-PGD2-DP1 axis is vital for brain tissue repair following ischemic stroke.
- This pathway regulates the phagocytic activity of CD36+ MGs/MΦs, crucial for clearing debris.
- Targeting this axis may enhance waste product removal and promote brain regeneration.
More Related Videos
12:42Stereological and Flow Cytometry Characterization of Leukocyte Subpopulations in Models of Transient or Permanent Cerebral Ischemia
Published on: December 28, 2014
07:19Assessing Retinal Microglial Phagocytic Function In Vivo Using a Flow Cytometry-based Assay
Published on: October 18, 2016
Related Concept Videos
Ischemic Stroke ll: Pathophysiology
Hemorrhagic Stroke ll: Pathophysiology