TY - JOUR
T1 - Mekk3 is essential for early embryonic cardiovascular development
AU - Yang, Jianhua
AU - Boerm, Melynda
AU - McCarty, Marya
AU - Bucana, Corazon
AU - Fidler, Isaiah J.
AU - Zhuang, Yuan
AU - Su, Bing
N1 - Funding Information:
We thank M. Karin for encouragement and support throughout the project; M. Karin and J. Han for expression vectors; R. Behringer for critically reading the manuscript; L. Gan, W. Shou, E. Li, R. Johnson, H. Chen and D. Reynods for advice and technical help on the mouse embryonic studies; T. Sato for the whole-mount staining protocol; and M. Goode and W. Pagel for editing the manuscript. These studies were partially supported by a grant from the American Cancer Society (RPG –97-090) to B.S.
PY - 2000/3
Y1 - 2000/3
N2 - The early development of blood vessels consists of two phases, vasculogenesis and angiogenesis, which involve distinct and also overlapping molecular regulators, but the intracellular signal transduction pathways involved in these processes have not been well defined. We disrupted Map3k3 (also known as Mekk3), which encodes Mekk3, a member of the Mekk/Ste11 family, in mice. Map3k3(-/-) embryos died at approximately embryonic day (E) 11, displaying disruption of blood vessel development and the structural integrity of the yolk sac. Angiogenesis was blocked at approximately E9.5 in mutant embryos. Map3k3 disruption did not alter the expression of the genes encoding Vegf-1, angiopoietin or their receptors. The development of embryonic, but not maternal, blood vessels in the placentas of Map3k3(-/-) embryos was impaired, revealing an intrinsic defect in Map3k3(-/-) endothelial cells. Moreover, Mekk3 activated myocyte-specific enhancer factor 2C (Mef2c), a transcription factor crucial for early embryonic cardiovascular development through the p38 mitogen-activated protein kinase (Mapk) cascade. We conclude that Mekk3 is necessary for blood vessel development and may be a possible target for drugs that control angiogenesis.
AB - The early development of blood vessels consists of two phases, vasculogenesis and angiogenesis, which involve distinct and also overlapping molecular regulators, but the intracellular signal transduction pathways involved in these processes have not been well defined. We disrupted Map3k3 (also known as Mekk3), which encodes Mekk3, a member of the Mekk/Ste11 family, in mice. Map3k3(-/-) embryos died at approximately embryonic day (E) 11, displaying disruption of blood vessel development and the structural integrity of the yolk sac. Angiogenesis was blocked at approximately E9.5 in mutant embryos. Map3k3 disruption did not alter the expression of the genes encoding Vegf-1, angiopoietin or their receptors. The development of embryonic, but not maternal, blood vessels in the placentas of Map3k3(-/-) embryos was impaired, revealing an intrinsic defect in Map3k3(-/-) endothelial cells. Moreover, Mekk3 activated myocyte-specific enhancer factor 2C (Mef2c), a transcription factor crucial for early embryonic cardiovascular development through the p38 mitogen-activated protein kinase (Mapk) cascade. We conclude that Mekk3 is necessary for blood vessel development and may be a possible target for drugs that control angiogenesis.
UR - https://www.scopus.com/pages/publications/0034050739
UR - https://www.scopus.com/pages/publications/0034050739#tab=citedBy
U2 - 10.1038/73550
DO - 10.1038/73550
M3 - Article
C2 - 10700190
AN - SCOPUS:0034050739
SN - 1061-4036
VL - 24
SP - 309
EP - 313
JO - Nature Genetics
JF - Nature Genetics
IS - 3
ER -