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.

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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