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Pathophysiology of Slow-Flow Vascular Malformations: Current Understanding and Unanswered Questions
Averill Clapp1, Carrie J Shawber2, June K Wu2
1Columbia University Vagelos College of Physicians & Surgeons, New York, NY.
Background:
Slow-flow vascular malformations include venous, lymphatic, and lymphaticovenous malformations. Recent studies have linked genetic variants hyperactivating either the PI3K/AKT/mTOR and/or RAS/RAF/MAPK signaling pathways with slow-flow vascular malformation development, leading to the use of pharmacotherapies such as sirolimus and alpelisib. It is important that clinicians understand basic and translational research advances in slow-flow vascular malformations.
Methods:
A literature review of basic science publications in slow-flow vascular malformations was performed on Pubmed, using search terms "venous malformation," "lymphatic malformation," "lymphaticovenous malformation," "genetic variant," "genetic mutation," "endothelial cells," and "animal model." Relevant publications were reviewed and summarized.
Results:
The study of patient tissues and the use of primary pathogenic endothelial cells from vascular malformations shed light on their pathological behaviors, such as endothelial cell hyperproliferation and disruptions in vessel architecture. The use of xenograft and transgenic animal models confirmed the pathogenicity of genetic variants and allowed for preclinical testing of potential therapies. These discoveries underscore the importance of basic and translational research in understanding the pathophysiology of vascular malformations, which will allow for the development of improved biologically targeted treatments.
Conclusion:
Despite basic and translation advances, a cure for slow-flow vascular malformations remains elusive. Many questions remain unanswered, including how genotype variants result in phenotypes, and genotype-phenotype heterogeneity. Continued research into venous and lymphatic malformation pathobiology is critical in understanding the mechanisms by which genetic variants contribute to vascular malformation phenotypic features.
Insights
Genetic variants in PI3K/AKT/mTOR and RAS/MAPK pathways drive slow-flow vascular malformations. Basic and translational research is crucial for developing targeted therapies for venous and lymphatic malformations.
Area of Science:
- Vascular Biology
- Genetics
- Pharmacology
Background:
- Slow-flow vascular malformations encompass venous, lymphatic, and lymphaticovenous types.
- Genetic variants activating PI3K/AKT/mTOR and/or RAS/RAF/MAPK pathways are implicated in their development.
- Pharmacotherapies like sirolimus and alpelisib are emerging treatments.
Purpose of the Study:
- To review basic and translational research advances in slow-flow vascular malformations.
- To highlight the importance of understanding underlying molecular mechanisms for improved treatments.
Main Methods:
- A literature review of basic science publications was conducted.
- Searched PubMed using terms: "venous malformation," "lymphatic malformation," "lymphaticovenous malformation," "genetic variant," "genetic mutation," "endothelial cells," and "animal model."
Main Results:
- Studies on patient tissues and endothelial cells reveal hyperproliferation and architectural disruption.
- Animal models confirm pathogenicity of genetic variants and enable preclinical therapy testing.
- Basic and translational research are vital for developing targeted treatments.
Conclusions:
- A definitive cure for slow-flow vascular malformations is still lacking.
- Key unanswered questions include genotype-phenotype correlations and heterogeneity.
- Continued research into malformation pathobiology is essential for understanding genetic contributions and advancing therapies.
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