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Chem., 273, 13552, 10.1074\u002Fjbc.273.22.13552\nLannoy, 2000, Transcriptional stimulation by HNF-6: target-specific recruitment of either CREB-binding protein (CBP) or p300\u002FCBP-associated factor (p\u002FCAF), J. Biol. Chem., 275, 22098, 10.1074\u002Fjbc.M000855200\nLannoy, 2002, Liver glucokinase gene expression is controlled by the Onecut transcription factor hepatocyte nuclear factor-6, Diabetologia, 45, 1136, 10.1007\u002Fs00125-002-0856-z\nLemaigre, 1993, Liver-specific factor binding to the liver promoter of a 6-phosphofructo-2-kinase\u002Ffructose-2,6-bisphosphatase gene, J. Biol. Chem., 268, 19896, 10.1016\u002FS0021-9258(19)36597-4\nLemaigre, 1996, Hepatocyte nuclear factor-6, a transcription factor that contains a novel type of homeodomain and a single cut domain, Proc. Natl. Acad. Sci. (USA), 93, 9460, 10.1073\u002Fpnas.93.18.9460\nMoller, 1999, Hepatocyte nuclear factor-6: Associations between genetic variability and type II diabetes and between genetic variability and estimates of insulin secretion, Diabetologia, 42, 1011, 10.1007\u002Fs001250051261\nNguyen, 2000, The Drosophila homolog of Onecut homeodomain proteins is a neural-specific transcriptional activator with a potential role in regulating neural differentiation, Mech. Dev., 97, 57, 10.1016\u002FS0925-4773(00)00431-7\nOffield, 1996, PDX-1 is required for pancreatic outgrowth and differentiation of the rostral duodenum, Development, 122, 983, 10.1242\u002Fdev.122.3.983\nOliveri, 2002, A regulatory gene network that directs micromere specification in the sea urchin embryo, Dev. Biol., 246, 209, 10.1006\u002Fdbio.2002.0627\nRausa, 1997, The cut-homeodomain transcriptional activator HNF-6 is coexpressed with its target gene HNF-3βin developing murine liver and pancreas, Dev. 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2005, Osteo-chondroprogenitor cells are derived from Sox9 expressing precursors, Proc. Natl. Acad. Sci. USA, 102, 14665, 10.1073\u002Fpnas.0504750102\nBoardman, 2002, A comprehensive collection of chicken cDNAs, Curr. Biol., 12, 1965, 10.1016\u002FS0960-9822(02)01296-4\nBuckley, 2004, Odd-skipped homologs function during gut development in C. elegans, Dev. Genes Evol., 214, 10, 10.1007\u002Fs00427-003-0369-x\nChevallier, 1977, Limb–somite relationship: origin of the limb musculature, J. Embryol. Exp. Morphol., 41, 245\nChrist, 2002, Limb muscle development, Int. J. Dev. Biol., 46, 905\nCoulter, 1988, Gene activities and segmental patterning in Drosophila: analysis of odd-skipped and pair-rule double mutants, Genes Dev., 2, 1812, 10.1101\u002Fgad.2.12b.1812\nDebeer, 2002, Human homologues of Osr1 and Osr2 are not involved in a syndrome with distal limb deficiencies, oral abnormalities, and renal defects, Am. J. Med. Genet., 111, 455, 10.1002\u002Fajmg.10583\nGoulding, 1993, Signals from the notochord and floor plate regulate the region-specific expression of two Pax genes in the developing spinal cord, Development, 117, 1001, 10.1242\u002Fdev.117.3.1001\nJames, 2005, Bmp signaling promotes intermediate mesoderm gene expression in a dose-dependent, cell-autonomous and translation-dependent manner, Dev. Biol., 288, 113, 10.1016\u002Fj.ydbio.2005.09.025\nKatoh, 2002, Molecular cloning and characterization of OSR1 on human chromosome 2p24, Int. J. Mol. Med., 10, 221\nLan, 2001, Osr2, a new mouse gene related to Drosophila odd-skipped, exhibits dynamic expression patterns during craniofacial, limb, and kidney development, Mech. Dev., 107, 175, 10.1016\u002FS0925-4773(01)00457-9\nLan, 2004, Odd-skipped related 2, Osr2. encodes a key intrinsic regulator of secondary palate growth and morphogenesis, Development, 131, 3207, 10.1242\u002Fdev.01175\nMennerich, 2001, Activation of myogenesis by the homeobox gene Lbx1 requires cell proliferation, EMBO J., 20, 7174, 10.1093\u002Femboj\u002F20.24.7174\nNusslein-Volhard, 1980, Mutations affecting segment number and polarity in Drosophila, Nature, 287, 795, 10.1038\u002F287795a0\nSainio, 1999, Mesonephric kidney – a stem cell factory?, Int. J. Dev. Biol., 43, 435\nSaulier-Le Drean, 1998, Dynamic changes in the functions of Odd-skipped during early Drosophila embryogenesis, Development, 125, 4851, 10.1242\u002Fdev.125.23.4851\nSchoenwolf, 1995\nSchwabe, 2004, Ror2 knockout mouse as a model for the developmental pathology of autosomal recessive Robinow syndrome, Dev. Dyn., 229, 400, 10.1002\u002Fdvdy.10466\nSeemann, 2005, Activating and deactivating mutations in the receptor interaction site of GDF5 cause symphalangism or brachydactyly type A2, J. Clin. Invest., 115, 2373, 10.1172\u002FJCI25118\nSo, 1999, Cloning and expression analysis of a mouse gene related to Drosophila odd-skipped, Mech. Dev., 84, 157, 10.1016\u002FS0925-4773(99)00058-1\nStricker, 2002, Role of Runx genes in chondrocyte differentiation, Dev. Biol., 245, 95, 10.1006\u002Fdbio.2002.0640\nTylzanowski, 2003, Zfhx1a and Zfhx1b mRNAs have non-overlapping expression domains during chick and mouse midgestation limb development, Gene Expr. Patterns, 3, 39, 10.1016\u002FS1567-133X(02)00092-3\nWang, 2005, Odd-skipped related 1 (Odd1) is an essential regulator of heart and urogenital development, Dev. Biol., 288, 582, 10.1016\u002Fj.ydbio.2005.09.024\nWard, 2000, Odd-skipped is expressed in multiple tissues during Drosophila embryogenesis, Mech. 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Biol., 22, 63, 10.1016\u002FS0945-053X(03)00005-2\nAumailley, 1996, Integrin-mediated cellular interactions with laminins, 127\nChang, 2005, Two types of aromatase with different encoding genes, tissue distribution and developmental expression in Nile tilapia (Oreochromis niloticus), Gen. Com. Endocrinol., 141, 101, 10.1016\u002Fj.ygcen.2004.11.020\nDawson, 1997, CD36 mediates the in vitro inhibitory effects of thrombospondin-1 on endothelial cells, J. Cell. Biol., 138, 707, 10.1083\u002Fjcb.138.3.707\nFraser, 2000, Angiogenesis and its control in the female reproductive system, Br. Med. Bull., 56, 787, 10.1258\u002F0007142001903364\nGao, 1996, Integrin-associated protein is a receptor for the C-terminal domain of thrombospondin, J. Biol. Chem., 271, 21, 10.1074\u002Fjbc.271.1.21\nGreenaway, 2005, Thrombospondin and vascular endothelial growth factor are cyclically expressed in an inverse pattern during bovine ovarian follicle development, Biol. Reprod., 72, 1071, 10.1095\u002Fbiolreprod.104.031120\nGreenaway, 2007, Thrombospondin-1 inhibits VEGF levels in the ovary directly by binding and internalization via the low density lipoprotein receptor-related protein-1 (LRP-1), J. Cell. Physiol., 210, 807, 10.1002\u002Fjcp.20904\nGuo, 1997, Antiproliferative and antitumor activities of D-reverse peptides derived from the second type-1 repeat of thrombospondin-1, J. Pept. Res., 50, 210, 10.1111\u002Fj.1399-3011.1997.tb01187.x\nHoegg, 2004, Phylogenetic timing of the fish-specific genome duplication correlates with the diversification of teleosts fish, J. Mol. Evol., 59, 190, 10.1007\u002Fs00239-004-2613-z\nHugo, 2002, Sustained expression of thrombospondin-1 is associated with the development of glomerular and tubulointerstitial fibrosis in the remnant kidney model, Nephron, 90, 460, 10.1159\u002F000054735\nJaffe, 1990, Mapping of the thrombospondin gene to human chromosome 15 and mouse chromosome 2 by in situ hybridization, Genomics, 7, 123, 10.1016\u002F0888-7543(90)90528-3\nLawler, 1998, Thrombospondin-1 is required for normal murine pulmonary homeostasis and its absence causes pneumonia, J. Clin. Invest., 101, 982, 10.1172\u002FJCI1684\nMagoffin, 2005, Ovarian theca cell, Int. J. Biochem. Cell Biol., 37, 1344, 10.1016\u002Fj.biocel.2005.01.016\nMcKenzie, 2006, Phylogenomic analysis of vertebrate thrombospondins reveals fish-specific paralogues, ancestral gene relationships and a tetrapod innovation, BMC Evol. 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Embryol., 29, 257, 10.1046\u002Fj.1439-0264.2000.00265.x\nRibeiro, 1999, The activation sequence of thrombospondin-1 interacts with the latency-associated peptide to regulate activation of latent transforming growth factor-β, J. Biol. Chem., 274, 13586, 10.1074\u002Fjbc.274.19.13586\nSawyer, 2002, Formation of ovarian follicles during fetal development in sheep, Biol. Reprod., 66, 1134, 10.1095\u002Fbiolreprod66.4.1134\nStaniszewska, 2007, Interaction of alpha9beta1 integrin with thrombospondin-1 promotes angiogenesis, Circ. Res., 100, 1308, 10.1161\u002F01.RES.0000266662.98355.66\nTacon, 2000, Effect of egg deprivation on sex steroids, gonadotropin, prolactin, and growth hormone profiles during the reproductive cycle of the mouthbrooding cichlid fish Oreochromis niloticus, Gen. Comp. Endocrinol., 117, 54, 10.1006\u002Fgcen.1999.7388\nTan, 2006, The structures of the thrombospondin-1 N-terminal domain and its complex with a synthetic pentameric heparin, Structure, 14, 33, 10.1016\u002Fj.str.2005.09.017\nThomas, 2008, Thrombospondin-1 expression is increased during follicular atresia in the primate ovary, Endocrinology, 149, 185, 10.1210\u002Fen.2007-0835\nTucker, 1997, In situ localization of thrombospondin-1 and thrombospondin-3 transcripts in the avian embryo, Dev. Dyn., 208, 326, 10.1002\u002F(SICI)1097-0177(199703)208:3\u003C326::AID-AJA4>3.0.CO;2-K\nUrry, 1998, Thrombospondins in early Xenopus embryos: dynamic patterns of expression suggest diverse roles in nervous system, notochord, and muscle development, Dev. 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Expression of the zebrafish genome during embryogenesis (NIH RO1 RR15402); ZFIN Direct Data Submission.\nVaillant, 1999, A full-length Cbfa1 gene product perturbs T-cell development and promotes lymphomagenesis in synergy with myc, Oncogene, 18, 7124, 10.1038\u002Fsj.onc.1203202\nVaillant, 2002, Enforced expression of Runx2 perturbs T cell development at a stage coincident with beta-selection, J. Immunol., 169, 2866, 10.4049\u002Fjimmunol.169.6.2866\nXiao, 2001, Characterization of the upstream mouse Cbfa1\u002FRunx2 promoter, J. Cell Biochem., 82, 647, 10.1002\u002Fjcb.1192\nYang, 2002, Transcription factors in bone: developmental and pathological aspects, Trends Mol. 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