Choose your fate: artery, vein or lymphatic vessel?

Current Opinion in Genetics & Development - Tập 14 - Trang 499-505 - 2004
Natasha L Harvey1, Guillermo Oliver1
1Department of Genetics and Tumor Cell Biology, St Jude Children’s Research Hospital, 332 North Lauderdale, Memphis, Tennessee, 38105, USA

Tài liệu tham khảo

Gale, 2001, Ephrin-B2 selectively marks arterial vessels and neovascularization sites in the adult, with expression in both endothelial and smooth-muscle cells, Dev Biol, 230, 151, 10.1006/dbio.2000.0112 Shalaby, 1995, Failure of blood-island formation and vasculogenesis in Flk-1-deficient mice, Nature, 376, 62, 10.1038/376062a0 Carmeliet, 1996, Abnormal blood vessel development and lethality in embryos lacking a single VEGF allele, Nature, 380, 435, 10.1038/380435a0 Ferrara, 1996, Heterozygous embryonic lethality induced by targeted inactivation of the VEGF gene, Nature, 380, 439, 10.1038/380439a0 Wu, 2003, HoxB5 is an upstream transcriptional switch for differentiation of the vascular endothelium from precursor cells, Mol Cell Biol, 23, 5680, 10.1128/MCB.23.16.5680-5691.2003 Baudino, 2002, c-Myc is essential for vasculogenesis and angiogenesis during development and tumor progression, Genes Dev, 16, 2530, 10.1101/gad.1024602 Ema, 2003, Combinatorial effects of Flk1 and Tal1 on vascular and hematopoietic development in the mouse, Genes Dev, 17, 380, 10.1101/gad.1049803 Gering, 2003, Lmo2 and Scl/Tal1 convert non-axial mesoderm into haemangioblasts which differentiate into endothelial cells in the absence of Gata1, Development, 130, 6187, 10.1242/dev.00875 Haigh, 2004, Activated Fps/Fes partially rescues the in vivo developmental potential of Flk1-deficient vascular progenitor cells, Blood, 103, 912, 10.1182/blood-2003-07-2343 Takashima, 2002, Targeting of both mouse neuropilin-1 and neuropilin-2 genes severely impairs developmental yolk sac and embryonic angiogenesis, Proc Natl Acad Sci USA, 99, 3657, 10.1073/pnas.022017899 Dyer, 2001, Indian hedgehog activates hematopoiesis and vasculogenesis and can respecify prospective neurectodermal cell fate in the mouse embryo, Development, 128, 1717, 10.1242/dev.128.10.1717 Vokes, 2002, Endoderm is required for vascular endothelial tube formation, but not for angioblast specification, Development, 129, 775, 10.1242/dev.129.3.775 Moser, 2003, BMPER, a novel endothelial cell precursor-derived protein, antagonizes bone morphogenetic protein signaling and endothelial cell differentiation, Mol Cell Biol, 23, 5664, 10.1128/MCB.23.16.5664-5679.2003 Lawson, 2001, Notch signaling is required for arterial-venous differentiation during embryonic vascular development, Development, 128, 3675, 10.1242/dev.128.19.3675 Lawson, 2002, Sonic hedgehog and vascular endothelial growth factor act upstream of the Notch pathway during arterial endothelial differentiation, Dev Cell, 3, 127, 10.1016/S1534-5807(02)00198-3 Zhong, 2001, Gridlock signalling pathway fashions the first embryonic artery, Nature, 414, 216, 10.1038/35102599 Fischer, 2004, The Notch target genes Hey1 and Hey2 are required for embryonic vascular development, Genes Dev, 18, 901, 10.1101/gad.291004 Wang, 1998, Molecular distinction and angiogenic interaction between embryonic arteries and veins revealed by ephrin-B2 and its receptor Eph-B4, Cell, 93, 741, 10.1016/S0092-8674(00)81436-1 Adams, 1999, Roles of ephrinB ligands and EphB receptors in cardiovascular development: demarcation of arterial/venous domains, vascular morphogenesis, and sprouting angiogenesis, Genes Dev, 13, 295, 10.1101/gad.13.3.295 Gerety, 1999, Symmetrical mutant phenotypes of the receptor EphB4 and its specific transmembrane ligand ephrin-B2 in cardiovascular development, Mol Cell, 4, 403, 10.1016/S1097-2765(00)80342-1 Gale, 2001, Ephrin-B2 selectively marks arterial vessels and neovascularization sites in the adult, with expression in both endothelial and smooth-muscle cells, Dev Biol, 230, 151, 10.1006/dbio.2000.0112 Shin, 2001, Expression of ephrinB2 identifies a stable genetic difference between arterial and venous vascular smooth muscle as well as endothelial cells, and marks subsets of microvessels at sites of adult neovascularization, Dev Biol, 230, 139, 10.1006/dbio.2000.9957 Urness, 2000, Arteriovenous malformations in mice lacking activin receptor-like kinase-1, Nat Genet, 26, 328, 10.1038/81634 Lai, 2003, Retinoic acid regulates endothelial cell proliferation during vasculogenesis, Development, 130, 6465, 10.1242/dev.00887 Xu, 2004, Vascular development in the retina and inner ear: control by Norrin and Frizzled-4, a high-affinity ligand–receptor pair, Cell, 116, 883, 10.1016/S0092-8674(04)00216-8 Yamazaki, 2003, WAVE2 is required for directed cell migration and cardiovascular development, Nature, 424, 452, 10.1038/nature01770 Acevedo, 2004, A new role for Nogo as a regulator of vascular remodeling, Nat Med, 10, 382, 10.1038/nm1020 Serini, 2003, Class 3 semaphorins control vascular morphogenesis by inhibiting integrin function, Nature, 424, 391, 10.1038/nature01784 Shoji, 2003, Semaphorin3a1 regulates angioblast migration and vascular development in zebrafish embryos, Development, 130, 3227, 10.1242/dev.00516 Mukouyama, 2002, Sensory nerves determine the pattern of arterial differentiation and blood vessel branching in the skin, Cell, 109, 693, 10.1016/S0092-8674(02)00757-2 Reese, 2004, Negative regulation of midline vascular development by the notochord, Dev Cell, 6, 699, 10.1016/S1534-5807(04)00127-3 Lammert, 2001, Induction of pancreatic differentiation by signals from blood vessels, Science, 294, 564, 10.1126/science.1064344 Yoshitomi, 2004, Endothelial cell interactions initiate dorsal pancreas development by selectively inducing the transcription factor Ptf1a, Development, 131, 807, 10.1242/dev.00960 Matsumoto, 2001, Liver organogenesis promoted by endothelial cells prior to vascular function, Science, 294, 559, 10.1126/science.1063889 Parker, 2004, The endothelial-cell-derived secreted factor Egfl7 regulates vascular tube formation, Nature, 428, 754, 10.1038/nature02416 Asellius G: De lactibus sive lacteis venis. Milan: J.B. Bidellium; 1627. Wigle, 1999, Prox1 function is required for the development of the murine lymphatic system, Cell, 98, 769, 10.1016/S0092-8674(00)81511-1 Oliver, 2004, Lymphatic vasculature development, Nat Rev Immunol, 4, 35, 10.1038/nri1258 Wigle, 2002, An essential role for Prox1 in the induction of the lymphatic endothelial cell phenotype, EMBO J, 21, 1505, 10.1093/emboj/21.7.1505 Kukk, 1996, VEGF-C receptor binding and pattern of expression with VEGFR-3 suggests a role in lymphatic vascular development, Development, 122, 3829, 10.1242/dev.122.12.3829 Jeltsch, 1997, Hyperplasia of lymphatic vessels in VEGF-C transgenic mice, Science, 276, 1423, 10.1126/science.276.5317.1423 Veikkola, 2001, Signalling via vascular endothelial growth factor receptor-3 is sufficient for lymphangiogenesis in transgenic mice, EMBO J, 20, 1223, 10.1093/emboj/20.6.1223 Karkkainen, 2004, Vascular endothelial growth factor C is required for sprouting of the first lymphatic vessels from embryonic veins, Nat Immunol, 5, 74, 10.1038/ni1013 Sabin, 1902, On the origin of the lymphatic system from the veins, and the development of the lymph hearts and thoracic duct in the pig, Am J Anat, 1, 367, 10.1002/aja.1000010310 Sabin, 1904, On the development of the superficial lymphatics in the skin of the pig, Am J Anat, 3, 183, 10.1002/aja.1000030205 Wilting, 2001, Development of the avian lymphatic system, Microsc Res Tech, 55, 81, 10.1002/jemt.1159 Abtahian, 2003, Regulation of blood and lymphatic vascular separation by signaling proteins SLP-76 and Syk, Science, 299, 247, 10.1126/science.1079477 Gale, 2002, Angiopoietin-2 is required for postnatal angiogenesis and lymphatic patterning, and only the latter role is rescued by Angiopoietin-1, Dev Cell, 3, 411, 10.1016/S1534-5807(02)00217-4 Yuan, 2002, Abnormal lymphatic vessel development in neuropilin 2 mutant mice, Development, 129, 4797, 10.1242/dev.129.20.4797 Karkkainen, 2001, A model for gene therapy of human hereditary lymphedema, Proc Natl Acad Sci USA, 98, 12677, 10.1073/pnas.221449198 Schacht, 2003, T1alpha/podoplanin deficiency disrupts normal lymphatic vasculature formation and causes lymphedema, EMBO J, 22, 3546, 10.1093/emboj/cdg342 Karkkainen, 2000, Missense mutations interfere with VEGFR-3 signalling in primary lymphoedema, Nat Genet, 25, 153, 10.1038/75997 Irrthum, 2000, Congenital hereditary lymphedema caused by a mutation that inactivates VEGFR3 tyrosine kinase, Am J Hum Genet, 67, 295, 10.1086/303019 Fang, 2000, Mutations in FOXC2 (MFH-1), a forkhead family transcription factor, are responsible for the hereditary lymphedema-distichiasis syndrome, Am J Hum Genet, 67, 1382, 10.1086/316915 Finegold, 2001, Truncating mutations in FOXC2 cause multiple lymphedema syndromes, Hum Mol Genet, 10, 1185, 10.1093/hmg/10.11.1185 Bell, 2001, Analysis of lymphoedema-distichiasis families for FOXC2 mutations reveals small insertions and deletions throughout the gene, Hum Genet, 108, 546, 10.1007/s004390100528 Irrthum, 2003, Mutations in the transcription factor gene SOX18 underlie recessive and dominant forms of hypotrichosis-lymphedema-telangiectasia, Am J Hum Genet, 72, 1470, 10.1086/375614 Makinen, 2001, Isolated lymphatic endothelial cells transduce growth, survival and migratory signals via the VEGF-C/D receptor VEGFR-3, EMBO J, 20, 4762, 10.1093/emboj/20.17.4762