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Published on: July 17, 2019
RAS-PI3Kα signaling regulates KrasG12D-induced lymphangiogenesis in complex lymphatic anomalies
Lorenzo M Fernandes1, Jeffrey Tresemer1, Angelica Vallejo1
1Hamon Center for Therapeutic Oncology Research, UT Southwestern Medical Center, Dallas, TX 75390, USA.
Abstract:
Complex lymphatic anomalies (CLAs) are rare diseases characterized by the abnormal development of lymphatic vessels. CLAs can be caused by somatic activating variants in KRAS (e.g. KRASG12D), which stimulate MAPK and PI3K signaling. Although KRAS-MAPK signaling is known to play a critical role in CLA pathogenesis, the contribution of KRAS-PI3Kα signaling remains unclear. To investigate the role of RAS activation of PI3Kα in CLAs, we analyzed mice carrying two missense mutations in the RAS-binding domain of p110α (encoded by Pik3ca), the catalytic subunit of PI3Kα. These two mutations block the interaction between p110α and RAS but do not affect its kinase activity. Disruption of RAS-mediated PI3Kα activation in lymphatic endothelial cells reduced lymphatic vessel branching but did not affect lymphatic valve formation. In KrasG12D-mutant mice, blocking RAS activation of p110α reduced the pathological enlargement of lymphatic vessels, but failed to prevent KrasG12D-induced lymphatic valve loss. Similar results were observed following p110α deletion in KrasG12D-mutant mice. Together, these findings demonstrate that KrasG12D drives distinct disease phenotypes through separate downstream pathways. KRAS-PI3Kα signaling promotes pathological lymphatic vessel enlargement, whereas KRAS-MAPK signaling disrupts lymphatic valve formation.
Insights
Complex lymphatic anomalies (CLAs) result from abnormal lymphatic vessel development. KRAS/PI3Kα signaling drives vessel enlargement, while KRAS/MAPK signaling disrupts lymphatic valve formation in CLAs.
Area of Science:
- Vascular biology
- Molecular genetics
- Rare diseases
Background:
- Complex lymphatic anomalies (CLAs) are rare developmental disorders of lymphatic vessels.
- Somatic KRAS mutations, particularly KrasG12D, are implicated in CLA pathogenesis by activating MAPK and PI3K signaling pathways.
- The specific role of KRAS-PI3Kα signaling in CLAs is not well understood.
Purpose of the Study:
- To investigate the contribution of RAS-activation of PI3Kα to CLA pathogenesis.
- To elucidate the distinct roles of KRAS/PI3Kα and KRAS/MAPK signaling in lymphatic vascular development and disease.
Main Methods:
- Utilized mouse models with specific mutations in the p110α subunit of PI3Kα to block RAS interaction.
- Analyzed the effects of disrupted RAS-PI3Kα signaling on lymphatic endothelial cells and lymphatic vessel development.
- Examined KrasG12D mutant mice with inhibited or deleted p110α to assess impacts on lymphatic vessel enlargement and valve formation.
Main Results:
- Disrupting RAS-mediated PI3Kα activation in lymphatic endothelial cells impaired lymphatic vessel branching but not valve formation.
- In KrasG12D mutant mice, blocking RAS-PI3Kα signaling reduced pathological lymphatic vessel enlargement.
- However, inhibiting RAS-PI3Kα signaling did not prevent KrasG12D-induced lymphatic valve loss, indicating distinct pathway involvement.
Conclusions:
- KrasG12D signaling diverges into distinct downstream pathways to mediate different CLA phenotypes.
- KRAS/PI3Kα signaling is crucial for pathological lymphatic vessel enlargement in CLAs.
- KRAS/MAPK signaling is primarily responsible for the disruption of lymphatic valve formation in CLAs.
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