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Published on: July 16, 2013
Absence of venous valves in mice lacking Connexin37
Stephanie J Munger1, John D Kanady, Alexander M Simon
1Department of Physiology, University of Arizona, Tucson, AZ 85724, USA. sjmunger@email.arizona.edu
Insights
Connexins (Cxs) are vital for venous valve development. Cx37 is essential for venous valve formation, while Cx43 shows dynamic expression in response to injury, suggesting shared pathways in venous and lymphatic valve development.
Area of Science:
- Vascular Biology
- Cellular Biology
- Developmental Biology
Background:
- Venous valves ensure unidirectional blood flow, preventing pressure damage to capillaries.
- Valvular dysfunction is linked to chronic venous insufficiency and varicose veins.
- Molecular mechanisms of venous valve development are poorly understood.
Purpose of the Study:
- Investigate the role of gap junction proteins (Connexins, Cxs) in venous valve development.
- Determine the expression patterns of Cx37, Cx43, and Cx47 in mouse venous valves.
- Identify key molecular factors essential for venous valve formation.
Main Methods:
- Analysis of Connexin expression in mouse venous valves.
- Study of venous valve development in Cx37-deficient mice.
- Investigation of Cx43 expression in response to skin wounding.
Main Results:
- Cx37, Cx43, and Cx47 are expressed in a polarized manner within venous valves.
- Cx43 expression is induced in venous endothelium after skin wounding.
- Absence of Cx37 leads to complete loss of venous valves.
- Cx37 is critical for venous valve development and maintenance.
Conclusions:
- Cx37 is essential for the development and maintenance of venous valves.
- Connexins play a role in venous valve formation, potentially sharing pathways with lymphatic valve development.
- Cx37 is a key protein in venous valve morphogenesis.
Abstract:
Venous valves play a crucial role in blood circulation, promoting the one-way movement of blood from superficial and deep veins towards the heart. By preventing retrograde flow, venous valves spare capillaries and venules from being subjected to damaging elevations in pressure, especially during skeletal muscle contraction. Pathologically, valvular incompetence or absence of valves are common features of venous disorders such as chronic venous insufficiency and varicose veins. The underlying causes of these conditions are not well understood, but congenital venous valve aplasia or agenesis may play a role in some cases. Despite progress in the study of cardiac and lymphatic valve morphogenesis, the molecular mechanisms controlling the development and maintenance of venous valves remain poorly understood. Here, we show that in valved veins of the mouse, three gap junction proteins (Connexins, Cxs), Cx37, Cx43, and Cx47, are expressed exclusively in the valves in a highly polarized fashion, with Cx43 on the upstream side of the valve leaflet and Cx37 on the downstream side. Surprisingly, Cx43 expression is strongly induced in the non-valve venous endothelium in superficial veins following wounding of the overlying skin. Moreover, we show that in Cx37-deficient mice, venous valves are entirely absent. Thus, Cx37, a protein involved in cell-cell communication, is one of only a few proteins identified so far as critical for the development or maintenance of venous valves. Because Cxs are necessary for the development of valves in lymphatic vessels as well, our results support the notion of common molecular pathways controlling valve development in veins and lymphatic vessels.
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