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The Pathogenesis of Port Wine Stain and Sturge Weber Syndrome: Complex Interactions between Genetic Alterations and
Vi Nguyen1, Marcelo Hochman2, Martin C Mihm3
1Department of Cell Biology and Anatomy, University of South Carolina School of Medicine, Columbia, SC 29209, USA. vi.nguyen@uscmed.sc.edu.
Insights
Port wine stain (PWS) is a congenital skin vascular malformation. Aberrant MAPK/PI3K signaling and somatic mutations like GNAQ contribute to PWS and Sturge Weber syndrome (SWS) pathogenesis.
Area of Science:
- Dermatology
- Genetics
- Developmental Biology
Background:
- Port wine stain (PWS) is a congenital vascular malformation affecting skin.
- Facial PWS in the V1 dermatome increases risk for Sturge Weber syndrome (SWS), a neurocutaneous disorder.
Purpose of the Study:
- To review current knowledge on PWS/SWS etiology and pathology.
- To explore the role of MAPK and PI3K signaling in PWS/SWS.
- To discuss potential future treatments targeting these pathways.
Main Methods:
- Review of current scientific literature on PWS/SWS pathogenesis.
- Analysis of evidence linking genetic mutations (GNAQ, PI3K) to vascular malformations.
- Examination of molecular phenotypes of PWS endothelial cells.
Main Results:
- PWS is a multifactorial malformation of the entire skin structure.
- PWS is characterized by impaired endothelial cell differentiation and progressive vascular dilatation.
- Dysregulated MAPK/PI3K signaling during embryonic development contributes to PWS/SWS.
- Somatic mutations (GNAQ, PI3K) act synergistically in developing vascular phenotypes.
Conclusions:
- MAPK and PI3K signaling pathways are key contributors to PWS/SWS pathogenesis.
- Somatic mutations play a role in the development of PWS/SWS vascular phenotypes.
- Future research should address unanswered questions regarding PWS/SWS etiology and treatment.
Abstract:
Port wine stain (PWS) is a congenital vascular malformation involving human skin. Approximately 15-20% of children a facial PWS involving the ophthalmic (V1) trigeminal dermatome are at risk for Sturge Weber syndrome (SWS), a neurocutaneous disorder with vascular malformations in the cerebral cortex on the same side of the facial PWS lesions. Recently, evidence has surfaced that advanced our understanding of the pathogenesis of PWS/SWS, including discoveries of somatic genetic mutations (GNAQ, PI3K), MAPK and PI3K aberrant activations, and molecular phenotypes of PWS endothelial cells. In this review, we summarize current knowledge on the etiology and pathology of PWS/SWS based on evidence that the activation of MAPK and/or PI3K contributes to the malformations, as well as potential futuristic treatment approaches targeting these aberrantly dysregulated signaling pathways. Current data support that: (1) PWS is a multifactorial malformation involving the entire physiological structure of human skin; (2) PWS should be pathoanatomically re-defined as "a malformation resulting from differentiation-impaired endothelial cells with a progressive dilatation of immature venule-like vasculatures"; (3) dysregulation of vascular MAPK and/or PI3K signaling during human embryonic development plays a part in the pathogenesis and progression of PWS/SWS; and (4) sporadic low frequency somatic mutations, such as GNAQ, PI3K, work as team players but not as a lone wolf, contributing to the development of vascular phenotypes. We also address many crucial questions yet to be answered in the future research investigations.
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