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Updated: Jan 24, 2026

Isolation of Intrapulmonary Artery and Smooth Muscle Cells to Investigate Vascular Responses
Published on: June 8, 2022
Smooth muscle cells-derived CXCL10 prevents endothelial healing through PI3Kγ-dependent T cells response
Adrien Lupieri1, Natalia F Smirnova1, Romain Solinhac1
1Institute of Metabolic and Cardiovascular Diseases (I2MC), Université de Toulouse, Institut National de la Santé et de la Recherche Médicale (INSERM) UMR1048, Toulouse F-31432, France.
Aims:
Defects in efficient endothelial healing have been associated with complication of atherosclerosis such as post-angioplasty neoatherosclerosis and plaque erosion leading to thrombus formation. However, current preventive strategies do not consider re-endothelialization in their design. Here, we investigate mechanisms linking immune processes and defect in re-endothelialization. We especially evaluate if targeting phosphoinositide 3-kinase γ immune processes could restore endothelial healing and identify immune mediators responsible for these defects.
Methods And Results:
Using in vivo model of endovascular injury, we showed that both ubiquitous genetic inactivation of PI3Kγ and hematopoietic cell-specific PI3Kγ deletion improved re-endothelialization and that CD4+ T-cell population drives this effect. Accordingly, absence of PI3Kγ activity correlates with a decrease in local IFNγ secretion and its downstream interferon-inducible chemokine CXCL10. CXCL10 neutralization promoted re-endothelialization in vivo as the same level than those observed in absence of PI3Kγ suggesting a role of CXCL10 in re-endothelialization defect. Using a new established ex vivo model of carotid re-endothelialization, we showed that blocking CXCL10 restore the IFNγ-induced inhibition of endothelial healing and identify smooth muscle cells as the source of CXCL10 secretion in response to Th1 cytokine.
Conclusion:
Altogether, these findings expose an unforeseen cellular cross-talk within the arterial wall whereby a PI3Kγ-dependent T-cell response leads to CXCL10 production by smooth muscle cells which in turn inhibits endothelial healing. Therefore, both PI3Kγ and the IFNγ/CXCL10 axis provide novel strategies to promote endothelial healing.
Insights
Targeting phosphoinositide 3-kinase gamma (PI3Kγ) and the IFNγ/CXCL10 pathway can restore endothelial healing. This study reveals a novel immune mechanism involving T-cells and smooth muscle cells that impairs re-endothelialization after injury.
Area of Science:
- Cardiovascular Biology
- Immunology
- Vascular Biology
Background:
- Defects in endothelial healing contribute to atherosclerosis complications like post-angioplasty neoatherosclerosis and plaque erosion.
- Current preventive strategies for vascular disease do not focus on promoting re-endothelialization.
Purpose of the Study:
- To investigate the link between immune processes and impaired endothelial healing.
- To determine if targeting phosphoinositide 3-kinase gamma (PI3Kγ) can restore endothelial repair.
- To identify specific immune mediators involved in defective re-endothelialization.
Main Methods:
- Utilized in vivo models of endovascular injury and ex vivo carotid re-endothelialization.
- Examined the effects of genetic PI3Kγ inactivation in various cell types.
- Analyzed the role of CD4+ T-cells, IFNγ, and CXCL10 in endothelial healing.
Main Results:
- PI3Kγ inactivation in endothelial and hematopoietic cells improved re-endothelialization, driven by CD4+ T-cells.
- Absence of PI3Kγ reduced local IFNγ and CXCL10 secretion.
- CXCL10 neutralization promoted re-endothelialization, implicating it in healing defects.
- Blocking CXCL10 restored endothelial healing inhibited by IFNγ, identifying smooth muscle cells as CXCL10 producers.
Conclusions:
- A PI3Kγ-dependent T-cell response leads to smooth muscle cell-derived CXCL10 production, inhibiting endothelial healing.
- The PI3Kγ and IFNγ/CXCL10 axis represent novel therapeutic targets to promote endothelial repair.
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