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Updated: Jun 5, 2026

Aortic Ring Assay
Published on: November 24, 2009
A two-way communication between microglial cells and angiogenic sprouts regulates angiogenesis in aortic ring
Simin F Rymo1, Holger Gerhardt, Fredrik Wolfhagen Sand
1Institute of Biomedicine, University of Gothenburg, Gothenburg, Sweden.
Background:
Myeloid cells have been associated with physiological and pathological angiogenesis, but their exact functions in these processes remain poorly defined. Monocyte-derived tissue macrophages of the CNS, or microglial cells, invade the mammalian retina before it becomes vascularized. Recent studies correlate the presence of microglia in the developing CNS with vascular network formation, but it is not clear whether the effect is directly caused by microglia and their contact with the endothelium.
Methodology/Principal Findings:
We combined in vivo studies of the developing mouse retina with in vitro studies using the aortic ring model to address the role of microglia in developmental angiogenesis. Our in vivo analyses are consistent with previous findings that microglia are present at sites of endothelial tip-cell anastomosis, and genetic ablation of microglia caused a sparser vascular network associated with reduced number of filopodia-bearing sprouts. Addition of microglia in the aortic ring model was sufficient to stimulate vessel sprouting. The effect was independent of physical contact between microglia and endothelial cells, and could be partly mimicked using microglial cell-conditioned medium. Addition of VEGF-A promoted angiogenic sprouts of different morphology in comparison with the microglial cells, and inhibition of VEGF-A did not affect the microglia-induced angiogenic response, arguing that the proangiogenic factor(s) released by microglia is distinct from VEGF-A. Finally, microglia exhibited oriented migration towards the vessels in the aortic ring cultures.
Conclusions/Significance:
Microglia stimulate vessel sprouting in the aortic ring cultures via a soluble microglial-derived product(s), rather than direct contact with endothelial cells. The observed migration of microglia towards the growing sprouts suggests that their position near endothelial tip-cells could result from attractive cues secreted by the vessels. Our data reveals a two-way communication between microglia and vessels that depends on soluble factors and should extend the understanding of how microglia promote vascular network formation.
Insights
Microglia stimulate blood vessel sprouting through soluble factors, not direct contact, influencing vascular network formation. This two-way communication between microglia and vessels is crucial for development.
Area of Science:
- Neuroscience
- Developmental Biology
- Angiogenesis Research
Background:
- Myeloid cells, including microglial cells, are implicated in angiogenesis, but their precise roles are unclear.
- Microglial cells are present in the developing central nervous system (CNS) and associate with vascular network formation.
- The direct contribution of microglial cells to vascular development requires further elucidation.
Purpose of the Study:
- To investigate the role of microglial cells in developmental angiogenesis.
- To determine if microglia directly interact with endothelial cells to promote vascular growth.
- To identify the mechanisms by which microglia influence vascular network formation.
Main Methods:
- In vivo studies using the developing mouse retina.
- In vitro studies employing the aortic ring assay.
- Genetic ablation of microglia and analysis of vascular network density.
- Assessment of microglial conditioned medium effects on vessel sprouting.
Main Results:
- Genetic ablation of microglia led to sparser vascular networks with fewer filopodia-bearing sprouts.
- Microglia addition to aortic ring cultures stimulated vessel sprouting independently of direct cell contact.
- Microglial-derived proangiogenic factors are distinct from VEGF-A.
- Microglia demonstrated directed migration towards vessels in aortic ring cultures.
Conclusions:
- Microglia promote angiogenesis via soluble factors, not direct endothelial cell contact.
- Vascular structures may secrete attractive cues that guide microglial migration.
- A bidirectional signaling pathway exists between microglia and vessels, mediated by soluble factors, impacting vascular network formation.
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