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Published on: May 1, 2020
RASA1 functions in EPHB4 signaling pathway to suppress endothelial mTORC1 activity
Abstract:
Vascular malformations are linked to mutations in RAS p21 protein activator 1 (RASA1, also known as p120RasGAP); however, due to the global expression of this gene, it is unclear how these mutations specifically affect the vasculature. Here, we tested the hypothesis that RASA1 performs a critical effector function downstream of the endothelial receptor EPHB4. In zebrafish models, we found that either RASA1 or EPHB4 deficiency induced strikingly similar abnormalities in blood vessel formation and function. Expression of WT EPHB4 receptor or engineered receptors with altered RASA1 binding revealed that the ability of EPHB4 to recruit RASA1 is required to restore blood flow in EPHB4-deficient animals. Analysis of EPHB4-deficient zebrafish tissue lysates revealed that mTORC1 is robustly overactivated, and pharmacological inhibition of mTORC1 in these animals rescued both vessel structure and function. Furthermore, overexpression of mTORC1 in endothelial cells exacerbated vascular phenotypes in animals with reduced EPHB4 or RASA1, suggesting a functional EPHB4/RASA1/mTORC1 signaling axis in endothelial cells. Tissue samples from patients with arteriovenous malformations displayed strong endothelial phospho-S6 staining, indicating increased mTORC1 activity. These results indicate that deregulation of EPHB4/RASA1/mTORC1 signaling in endothelial cells promotes vascular malformation and suggest that mTORC1 inhibitors, many of which are approved for the treatment of certain cancers, should be further explored as a potential strategy to treat patients with vascular malformations.
Insights
Mutations in RAS p21 protein activator 1 (RASA1) cause vascular malformations. This study reveals a signaling pathway involving EPHB4, RASA1, and mTORC1 that, when disrupted, leads to these conditions.
Area of Science:
- Molecular Biology
- Developmental Biology
- Genetics
Background:
- Mutations in RAS p21 protein activator 1 (RASA1) are linked to vascular malformations.
- The precise role of RASA1 in vascular development is not fully understood due to its widespread expression.
Purpose of the Study:
- To investigate the hypothesis that RASA1 acts downstream of the endothelial receptor EPHB4.
- To elucidate the signaling pathway involved in RASA1-associated vascular malformations.
Main Methods:
- Utilized zebrafish models with deficiencies in RASA1 or EPHB4.
- Analyzed blood vessel formation and function.
- Investigated the role of EPHB4-RASA1 interaction.
- Assessed mTORC1 activity and utilized pharmacological inhibition.
- Examined human arteriovenous malformation patient samples.
Main Results:
- RASA1 or EPHB4 deficiency caused similar vascular abnormalities in zebrafish.
- EPHB4's ability to recruit RASA1 is crucial for restoring blood flow in EPHB4-deficient models.
- mTORC1 was overactivated in EPHB4-deficient zebrafish, and its inhibition rescued vascular defects.
- Increased mTORC1 activity was observed in endothelial cells of patients with arteriovenous malformations.
Conclusions:
- A functional EPHB4/RASA1/mTORC1 signaling axis in endothelial cells is critical for proper vascular development.
- Deregulation of this pathway promotes vascular malformations.
- mTORC1 inhibitors represent a potential therapeutic strategy for vascular malformations.
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