References
Andersson, O. Reissmann, E. Ibanez, C.F. (2006). Growth differentiation factor 11 signals through the transforming growth factor-beta receptor ALK5 to regionalize the anterior-posterior axis. EMBO Rep
7, 831–837.
AbstractAndrews, W.D. Barber, M. Parnavelas, J.G. (2007). Slit-Robo interactions during cortical development. J Anat
211, 188–198.
Abstract ArticleArmstrong, J.F. Pritchard-Jones, K. Bickmore, W.A. Hastie, N.D. Bard, J.B. (1993). The expression of the Wilms’ tumour gene, WT1, in the developing mammalian embryo. Mech Dev
40, 85–97.
Abstract ArticleBaloh, R.H. Tansey, M.G. Golden, J.P. Creedon, D.J. Heuckeroth, R.O. Keck, C.L. Zimonjic, D.B. Popescu, N.C. Johnson, E.M. Milbrandt, J. (1997). TrnR2, a novel receptor that mediates neurturin and GDNF signaling through Ret. Neuron
18, 793–802.
Abstract ArticleBard, J.B. Gordon, A. Sharp, L. Sellers, W.I. (2001). Early nephron formation in the developing mouse kidney. J Anat
199, 385–392.
Abstract ArticleBarnes, J.D. Crosby, J.L. Jones, C.M. Wright, C.V. Hogan, B.L. (1994). Embryonic expression of Lim-1, the mouse homolog of Xenopus Xlim-1, suggests a role in lateral mesoderm differentiation and neurogenesis. Dev Biol
161, 168–178.
Abstract ArticleBasson, M.A. Akbulut, S. Watson-Johnson, J. Simon, R. Carroll, T.J. Shakya, R. Gross, I. Martin, G.R. Lufkin, T. McMahon, A.P. et al. (2005). Sprouty1 is a critical regulator of GDNF/RET-mediated kidney induction. Dev Cell
8, 229–239.
Abstract ArticleBasson, M.A. Watson-Johnson, J. Shakya, R. Akbulut, S. Hyink, D. Costantini, F.D. Wilson, P.D. Mason, I.J. Licht, J.D. (2006). Branching morphogenesis of the ureteric epithelium during kidney development is coordinated by the opposing functions of GDNF and Sprouty1. Dev Biol
299, 466–477.
Abstract ArticleBatourina, E. Gim, S. Bello, N. Shy, M. Clagett-Dame, M. Srinivas, S. Costantini, F. Mendelsohn, C. (2001). Vitamin A controls epithelial/mesenchymal interactions through Ret expression. Nat Genet
27, 74–78.
AbstractBouchard, M. Pfeffer, P. Busslinger, M. (2000). Functional equivalence of the transcription factors Pax2 and Pax5 in mouse development. Development
127, 3703–3713.
AbstractBouchard, M. Souabni, A. Mandler, M. Neubuser, A. Busslinger, M. (2002). Nephric lineage specification by Pax2 and Pax8. Genes Dev
16, 2958–2970.
Abstract ArticleBoyden, E.A. (1927). Experimental obstruction of the mesonephric ducts. Proc Soc Exp Biol Med 24, 572–576.
Boyle, S. Misfeldt, A. Chandler, K.J. Deal, K.K. Southard-Smith, E.M. Mortlock, D.P. Baldwin, H.S. de Caestecker, M. (2008). Fate mapping using Cited1-CreERT2 mice demonstrates that the cap mesenchyme contains self-renewing progenitor cells and gives rise exclusively to nephronic epithelia. Dev Biol
313, 234–245.
Abstract ArticleBracken, C.M. Mizeracka, K. McLaughlin, K.A. (2008). Patterning the embryonic kidney: BMP signaling mediates the differentiation of the pronephric tubules and duct in Xenopus laevis. Dev Dyn
237, 132–144.
Abstract ArticleBrandenberger, R. Schmidt, A. Linton, J. Wang, D. Backus, C. Denda, S. Muller, U. Reichardt, L.F. (2001). Identification and characterization of a novel extracellular matrix protein nephronectin that is associated with integrin alpha8beta1 in the embryonic kidney. J Cell Biol
154, 447–458.
Abstract ArticleBrenner-Anantharam, A. Cebrian, C. Guillaume, R. Hurtado, R. Sun, T.T. Herzlinger, D. (2007). Tailbud-derived mesenchyme promotes urinary tract segmentation via BMP4 signaling. Development
134, 1967–1975.
Abstract ArticleBridgewater, D. Cox, B. Cain, J. Lau, A. Athaide, V. Gill, P.S. Kuure, S. Sainio, K. Rosenblum, N.D. (2008). Canonical WNT/beta-catenin signaling is required for ureteric branching. Dev Biol
317, 83–94.
Abstract ArticleBrodbeck, S. Besenbeck, B. Englert, C. (2004). The transcription factor Six2 activates expression of the Gdnf gene as well as its own promoter. Mech Dev
121, 1211–1222.
Abstract ArticleBrophy, P.D. Ostrom, L. Lang, K.M. Dressler, G.R. (2001). Regulation of ureteric bud outgrowth by Pax2-dependent activation of the glial derived neurotrophic factor gene. Development
128, 4747–4756.
AbstractBruce, S.J. Rea, R.W. Steptoe, A.L. Busslinger, M. Bertram, J.F. Perkins, A.C. (2007). In vitro differentiation of murine embryonic stem cells toward a renal lineage. Differentiation
75, 337–349.
Abstract ArticleBullock, S.L. Fletcher, J.M. Beddington, R.S. Wilson, V.A. (1998). Renal agenesis in mice homozygous for a gene trap mutation in the gene encoding heparan sulfate 2-sulfotransferase. Genes Dev
12, 1894–1906.
Abstract ArticleBush, K.T. Sakurai, H. Steer, D.L. Leonard, M.O. Sampogna, R.V. Meyer, T.N. Schwesinger, C. Qiao, J. Nigam, S.K. (2004). TGF-beta superfamily members modulate growth, branching, shaping, and patterning of the ureteric bud. Dev Biol
266, 285–298.
Abstract ArticleCacalano, G. Farinas, I. Wang, L.C. Hagler, K. Forgie, A. Moore, M. Armanini, M. Phillips, H. Ryan, A.M. Reichardt, L.F. et al. (1998). GFRalpha1 is an essential receptor component for GDNF in the developing nervous system and kidney. Neuron
21, 53–62.
Abstract ArticleCain, J.E. Bertram, J.F. (2006). Ureteric branching morphogenesis in BMP4 heterozygous mutant mice. J Anat
209, 745–755.
Abstract ArticleCarroll, T.J. Park, J.S. Hayashi, S. Majumdar, A. McMahon, A.P. (2005). Wnt9b plays a central role in the regulation of mesenchymal to epithelial transitions underlying organogenesis of the mammalian urogenital system. Dev Cell
9, 283–292.
Abstract ArticleCastrop, H. (2007). Mediators of tubuloglomerular feedback regulation of glomerular filtration: ATP and adenosine. Acta Physiol (Oxf)
189, 3–14.
AbstractCebrian, C. Borodo, K. Charles, N. Herzlinger, D.A. (2004). Morphometric index of the developing murine kidney. Dev Dyn
231, 601–608.
Abstract ArticleCelli, G. LaRochelle, W.J. Mackem, S. Sharp, R. Merlino, G. (1998). Soluble dominant-negative receptor uncovers essential roles for fibroblast growth factors in multi-organ induction and patterning. Embo J
17, 1642–1655.
Abstract ArticleChai, L. Yang, J. Di, C. Cui, W. Kawakami, K. Lai, R. Ma, Y. (2006). Transcriptional activation of the SALL1 by the human SIX1 homeodomain during kidney development. J Biol Chem
281, 18918–18926.
Abstract ArticleCheng, H.T. Kim, M. Valerius, M.T. Surendran, K. Schuster-Gossler, K. Gossler, A. McMahon, A.P. Kopan, R. (2007). Notch2, but not Notch1, is required for proximal fate acquisition in the mammalian nephron. Development
134, 801–811.
Abstract ArticleCheng, H.T. Miner, J.H. Lin, M. Tansey, M.G. Roth, K. Kopan, R. (2003). Gamma-secretase activity is dispensable for mesenchyme-to-epithelium transition but required for podocyte and proximal tubule formation in developing mouse kidney. Development
130, 5031–5042.
Abstract ArticleColes, H.S. Burne, J.F. Raff, M.C. (1993). Large-scale normal cell death in the developing rat kidney and its reduction by epidermal growth factor. Development
118, 777–784.
AbstractCostantini, F. Shakya, R. (2006). GDNF/Ret signaling and the development of the kidney. Bioessays
28, 117–127.
Abstract ArticleCoulter, D.E. Swaykus, E.A. Beran-Koehn, M.A. Goldberg, D. Wieschaus, E. Schedl, P. (1990). Molecular analysis of odd-skipped, a zinc finger encoding segmentation gene with a novel pair-rule expression pattern. Embo J
9, 3795–3804.
AbstractCroisille, Y. Gumpel-Pinot, M. Martin, C. (1976). [Differentiation of secretory tubes of avian kidney : effect of heterogenous inducers]. C R Acad Sci Hebd Seances Acad Sci D
282, 1987–1990.
AbstractCullen-McEwen, L.A. Caruana, G. Bertram, J.F. (2005). The where, what and why of the developing renal stroma. Nephron Exp Nephrol
99, e1–8.
Abstract ArticleDavies, J.A. Yates, E.A. Turnbull, J.E. (2003). Structural determinants of heparan sulphate modulation of GDNF signalling. Growth Factors
21, 109–119.
Abstract ArticleDe Robertis, E.M. Kuroda, H. (2004). Dorsal-ventral patterning and neural induction in Xenopus embryos. Annu Rev Cell Dev Biol
20, 285–308.
Abstract ArticleDolle, P. Ruberte, E. Leroy, P. Morriss-Kay, G. Chambon, P. (1990). Retinoic acid receptors and cellular retinoid binding proteins. I. A systematic study of their differential pattern of transcription during mouse organogenesis. Development
110, 1133–1151.
AbstractDonovan, M.J. Natoli, T.A. Sainio, K. Amstutz, A. Jaenisch, R. Sariola, H. Kreidberg, J.A. (1999). Initial differentiation of the metanephric mesenchyme is independent of WT1 and the ureteric bud. Dev Genet
24, 252–262.
AbstractDressler, G.R. (2006). The cellular basis of kidney development. Annu Rev Cell Dev Biol
22, 509–529.
Abstract ArticleDudley, A.T. Godin, R.E. Robertson, E.J. (1999). Interaction between FGF and BMP signaling pathways regulates development of metanephric mesenchyme. Genes Dev
13, 1601–1613.
Abstract ArticleDudley, A.T. Robertson, E.J. (1997). Overlapping expression domains of bone morphogenetic protein family members potentially account for limited tissue defects in BMP7 deficient embryos. Dev Dyn
208, 349–362.
AbstractEremina, V. Sood, M. Haigh, J. Nagy, A. Lajoie, G. Ferrara, N. Gerber, H.P. Kikkawa, Y. Miner, J.H. Quaggin, S.E. (2003). Glomerular-specific alterations of VEGF-A expression lead to distinct congenital and acquired renal diseases. J Clin Invest
111, 707–716.
AbstractEsquela, A.F. Lee, S.J. (2003). Regulation of metanephric kidney development by growth/differentiation factor 11. Dev Biol
257, 356–370.
Abstract ArticleFenton, R.A. Knepper, M.A. (2007). Mouse models and the urinary concentrating mechanism in the new millennium. Physiol Rev
87, 1083–1112.
Abstract ArticleFisher, C.E. Michael, L. Barnett, M.W. Davies, J.A. (2001). Erk MAP kinase regulates branching morphogenesis in the developing mouse kidney. Development
128, 4329–4338.
AbstractFujii, T. Pichel, J.G. Taira, M. Toyama, R. Dawid, I.B. Westphal, H. (1994). Expression patterns of the murine LIM class homeobox gene lim1 in the developing brain and excretory system. Dev Dyn
199, 73–83.
AbstractGao, X. Chen, X. Taglienti, M. Rumballe, B. Little, M.H. Kreidberg, J.A. (2005). Angioblast-mesenchyme induction of early kidney development is mediated by Wt1 and Vegfa. Development
132, 5437–5449.
Abstract ArticleGilbert, S.F. (2006). Developmental Biology. Vol 8th, (Sinauer Associates, Inc.);
Goldstein, R.E. Cook, O. Dinur, T. Pisante, A. Karandikar, U.C. Bidwai, A. Paroush, Z. (2005). An eh1-like motif in odd-skipped mediates recruitment of Groucho and repression in vivo. Mol Cell Biol
25, 10711–10720.
Abstract ArticleGong, K.Q. Yallowitz, A.R. Sun, H. Dressler, G.R. Wellik, D.M. (2007). A Hox-Eya-Pax complex regulates early kidney developmental gene expression. Mol Cell Biol
27, 7661–7668.
Abstract ArticleGrieshammer, U. Cebrian, C. Ilagan, R. Meyers, E. Herzlinger, D. Martin, G.R. (2005). FGF8 is required for cell survival at distinct stages of nephrogenesis and for regulation of gene expression in nascent nephrons. Development
132, 3847–3857.
Abstract ArticleGrieshammer, U. Le, M. Plump, A.S. Wang, F. Tessier-Lavigne, M. Martin, G.R. (2004). SLIT2-mediated ROBO2 signaling restricts kidney induction to a single site. Dev Cell
6, 709–717.
Abstract ArticleGrobstein, C. (1955). Inductive interaction in the development of the mouse metanephros. J Exp Zool
130, 319–340.
ArticleGrobstein, C. (1956). Trans-filter induction of tubules in mouse metanephrogenic mesenchyme. Exp Cell Res
10, 424–440.
Abstract ArticleGrote, D. Souabni, A. Busslinger, M. Bouchard, M. (2006). Pax 2/8-regulated Gata 3 expression is necessary for morphogenesis and guidance of the nephric duct in the developing kidney. Development
133, 53–61.
Abstract ArticleGupta, S. Verfaillie, C. Chmielewski, D. Kren, S. Eidman, K. Connaire, J. Heremans, Y. Lund, T. Blackstad, M. Jiang, Y. et al. (2006). Isolation and characterization of kidney-derived stem cells. J Am Soc Nephrol
17, 3028–3040.
Abstract ArticleHartman, H.A. Lai, H.L. Patterson, L.T. (2007). Cessation of renal morphogenesis in mice. Dev Biol
310, 379–387.
Abstract ArticleHartwig, S. Bridgewater, D. Di Giovanni, V. Cain, J. Mishina, Y. Rosenblum, N.D. (2008). BMP receptor ALK3 controls collecting system development. J Am Soc Nephrol
19, 117–124.
Abstract ArticleHatini, V. Huh, S.O. Herzlinger, D. Soares, V.C. Lai, E. (1996). Essential role of stromal mesenchyme in kidney morphogenesis revealed by targeted disruption of Winged Helix transcription factor BF-2. Genes Dev
10, 1467–1478.
Abstract ArticleHebert, S.C. Reilly, R.F. Kriz, W. (2001). Structural-Functional Relationships in the Kidney. Diseases of the Kidney and Urinary Tract Schrier, R. W. Philadelphia, Lippincott: Williams & Wilkins; , 3–58.
Hellmich, H.L. Kos, L. Cho, E.S. Mahon, K.A. Zimmer, A. (1996). Embryonic expression of glial cell-line derived neurotrophic factor (GDNF) suggests multiple developmental roles in neural differentiation and epithelial-mesenchymal interactions. Mech Dev
54, 95–105.
Abstract ArticleHerzlinger, D. Koseki, C. Mikawa, T. al-Awqati, Q. (1992). Metanephric mesenchyme contains multipotent stem cells whose fate is restricted after induction. Development
114, 565–572.
AbstractHoar, R.M. (1976). Comparative developmental aspects of selected organ systems. II. Gastrointestinal and urogenital systems. Environ Health Perspect
18, 61–66.
Abstract ArticleHsu, D.R. Economides, A.N. Wang, X. Eimon, P.M. Harland, R.M. (1998). The Xenopus dorsalizing factor Gremlin identifies a novel family of secreted proteins that antagonize BMP activities. Mol Cell
1, 673–683.
Abstract ArticleHu, J. Shima, H. Nakagawa, H. (1999). Glial cell line-derived neurotropic factor stimulates sertoli cell proliferation in the early postnatal period of rat testis development. Endocrinology
140, 3416–3421.
Abstract ArticleHu, M.C. Piscione, T.D. Rosenblum, N.D. (2003). Elevated SMAD1/beta-catenin molecular complexes and renal medullary cystic dysplasia in ALK3 transgenic mice. Development
130, 2753–2766.
Abstract ArticleHumphreys, B.D. Bonventre, J.V. (2007). The contribution of adult stem cells to renal repair. Nephrol Ther
3, 3–10.
AbstractHumphreys, B.D. Valerius, M.T. Kobayashi, A. Mugford, J.W. Soeung, S. Duffield, J.S. McMahon, A.P. Bonventre, J.V. (2008). Intrinsic epithelial cells repair the kidney after injury. Cell Stem Cell
2, 284–291.
Abstract ArticleJames, R.G. Kamei, C.N. Wang, Q. Jiang, R. Schultheiss, T.M. (2006). Odd-skipped related 1 is required for development of the metanephric kidney and regulates formation and differentiation of kidney precursor cells. Development
133, 2995–3004.
Abstract ArticleJames, R.G. Schultheiss, T.M. (2005). Bmp signaling promotes intermediate mesoderm gene expression in a dose-dependent, cell-autonomous and translation-dependent manner. Dev Biol
288, 113–125.
Abstract ArticleJemc, J. Rebay, I. (2007). The eyes absent family of phosphotyrosine phosphatases: properties and roles in developmental regulation of transcription. Annu Rev Biochem
76, 513–538.
Abstract ArticleKim, D. Dressler, G.R. (2005). Nephrogenic factors promote differentiation of mouse embryonic stem cells into renal epithelia. J Am Soc Nephrol
16, 3527–3534.
Abstract ArticleKishimoto, Y. Lee, K.H. Zon, L. Hammerschmidt, M. Schulte-Merker, S. (1997). The molecular nature of zebrafish swirl: BMP2 function is essential during early dorsoventral patterning. Development
124, 4457–4466.
AbstractKispert, A. Vainio, S. McMahon, A.P. (1998). Wnt-4 is a mesenchymal signal for epithelial transformation of metanephric mesenchyme in the developing kidney. Development
125, 4225–4234.
AbstractKispert, A. Vainio, S. Shen, L. Rowitch, D.H. McMahon, A.P. (1996). Proteoglycans are required for maintenance of Wnt-11 expression in the ureter tips. Development
122, 3627–3637.
AbstractKobayashi, A. Kwan, K.M. Carroll, T.J. McMahon, A.P. Mendelsohn, C.L. Behringer, R.R. (2005). Distinct and sequential tissue-specific activities of the LIM-class homeobox gene Lim1 for tubular morphogenesis during kidney development. Development
132, 2809–2823.
Abstract ArticleKobayashi, A. Valerius, M.T. Mugford, J.W. Carroll, T.J. Self, M. Oliver, G. McMahon, A.P. (2008). Six2 defines and regulates a multipotent self-renewing nephron progenitor population throughout mammalian kidney development. Cell Stem Cell
3, 169–181.
Abstract ArticleKobayashi, H. Kawakami, K. Asashima, M. Nishinakamura, R. (2007). Six1 and Six4 are essential for Gdnf expression in the metanephric mesenchyme and ureteric bud formation, while Six1 deficiency alone causes mesonephric-tubule defects. Mech Dev
124, 290–303.
Abstract ArticleKobayashi, T. Tanaka, H. Kuwana, H. Inoshita, S. Teraoka, H. Sasaki, S. Terada, Y. (2005). Wnt4-transformed mouse embryonic stem cells differentiate into renal tubular cells. Biochem Biophys Res Commun
336, 585–595.
Abstract ArticleKoseki, C. (1993). Cell death programmed in uninduced metanephric mesenchymal cells. Pediatr Nephrol
7, 609–611.
Abstract ArticleKoseki, C. Herzlinger, D. al-Awqati, Q. (1992). Apoptosis in metanephric development. J Cell Biol
119, 1327–1333.
Abstract ArticleKreidberg, J.A. Sariola, H. Loring, J.M. Maeda, M. Pelletier, J. Housman, D. Jaenisch, R. (1993). WT-1 is required for early kidney development. Cell
74, 679–691.
Abstract ArticleKume, T. Deng, K. Hogan, B.L. (2000). Murine forkhead/winged helix genes Foxc1 (Mf1) and Foxc2 (Mfh1) are required for the early organogenesis of the kidney and urinary tract. Development
127, 1387–1395.
AbstractKuure, S. Popsueva, A. Jakobson, M. Sainio, K. Sariola, H. (2007). Glycogen synthase kinase-3 inactivation and stabilization of beta-catenin induce nephron differentiation in isolated mouse and rat kidney mesenchymes. J Am Soc Nephrol
18, 1130–1139.
Abstract ArticleLazzeri, E. Crescioli, C. Ronconi, E. Mazzinghi, B. Sagrinati, C. Netti, G.S. Angelotti, M.L. Parente, E. Ballerini, L. Cosmi, L. et al. (2007). Regenerative potential of embryonic renal multipotent progenitors in acute renal failure. J Am Soc Nephrol
18, 3128–3138.
Abstract ArticleLevinson, R.S. Batourina, E. Choi, C. Vorontchikhina, M. Kitajewski, J. Mendelsohn, C.L. (2005). Foxd1-dependent signals control cellularity in the renal capsule, a structure required for normal renal development. Development
132, 529–539.
Abstract ArticleLi, X. Oghi, K.A. Zhang, J. Krones, A. Bush, K.T. Glass, C.K. Nigam, S.K. Aggarwal, A.K. Maas, R. Rose, D.W. Rosenfeld, M.G. (2003). Eya protein phosphatase activity regulates Six1-Dach-Eya transcriptional effects in mammalian organogenesis. Nature
426, 247–254.
Abstract ArticleLinton, J.M. Martin, G.R. Reichardt, L.F. (2007). The ECM protein nephronectin promotes kidney development via integrin alpha8beta1-mediated stimulation of Gdnf expression. Development
134, 2501–2509.
Abstract ArticleLittle, M.H. (2006). Regrow or repair: potential regenerative therapies for the kidney. J Am Soc Nephrol
17, 2390–2401.
Abstract ArticleLuo, G. Hofmann, C. Bronckers, A.L. Sohocki, M. Bradley, A. Karsenty, G. (1995). BMP-7 is an inducer of nephrogenesis, and is also required for eye development and skeletal patterning. Genes Dev
9, 2808–2820.
Abstract ArticleLyons, K.M. Hogan, B.L. Robertson, E.J. (1995). Colocalization of BMP 7 and BMP 2 RNAs suggests that these factors cooperatively mediate tissue interactions during murine development. Mech Dev
50, 71–83.
Abstract ArticleMaeshima, A. (2007). Label-retaining cells in the kidney: origin of regenerating cells after renal ischemia. Clin Exp Nephrol
11, 269–274.
Abstract ArticleMaeshima, A. Sakurai, H. Choi, Y. Kitamura, S. Vaughn, D.A. Tee, J.B. Nigam, S.K. (2007). Glial cell-derived neurotrophic factor independent ureteric bud outgrowth from the Wolffian duct. J Am Soc Nephrol
18, 3147–3155.
Abstract ArticleMaeshima, A. Sakurai, H. Nigam, S.K. (2006). Adult kidney tubular cell population showing phenotypic plasticity, tubulogenic capacity, and integration capability into developing kidney. J Am Soc Nephrol
17, 188–198.
Abstract ArticleMajumdar, A. Vainio, S. Kispert, A. McMahon, J. McMahon, A.P. (2003). Wnt11 and Ret/Gdnf pathways cooperate in regulating ureteric branching during metanephric kidney development. Development
130, 3175–3185.
Abstract ArticleMansouri, A. Chowdhury, K. Gruss, P. (1998). Follicular cells of the thyroid gland require Pax8 gene function. Nat Genet
19, 87–90.
Abstract ArticleMaretto, S. Cordenonsi, M. Dupont, S. Braghetta, P. Broccoli, V. Hassan, A.B. Volpin, D. Bressan, G.M. Piccolo, S. (2003). Mapping Wnt/beta-catenin signaling during mouse development and in colorectal tumors. Proc Natl Acad Sci U S A
100, 3299–3304.
Abstract ArticleMartinez, G. Mishina, Y. Bertram, J.F. (2002). BMPs and BMP receptors in mouse metanephric development: in vivo and in vitro studies. Int J Dev Biol
46, 525–533.
AbstractMason, J.M. Morrison, D.J. Basson, M.A. Licht, J.D. (2006). Sprouty proteins: multifaceted negative-feedback regulators of receptor tyrosine kinase signaling. Trends Cell Biol
16, 45–54.
Abstract ArticleMcPherron, A.C. Lawler, A.M. Lee, S.J. (1999). Regulation of anterior/posterior patterning of the axial skeleton by growth/differentiation factor 11. Nat Genet
22, 260–264.
Abstract ArticleMendelsohn, C. Batourina, E. Fung, S. Gilbert, T. Dodd, J. (1999). Stromal cells mediate retinoid-dependent functions essential for renal development. Development
126, 1139–1148.
AbstractMerkel, C.E. Karner, C.M. Carroll, T.J. (2007). Molecular regulation of kidney development: is the answer blowing in the Wnt? Pediatr Nephrol 22, 1825–1838.
Michos, O. Goncalves, A. Lopez-Rios, J. Tiecke, E. Naillat, F. Beier, K. Galli, A. Vainio, S. Zeller, R. (2007). Reduction of BMP4 activity by gremlin 1 enables ureteric bud outgrowth and GDNF/WNT11 feedback signalling during kidney branching morphogenesis. Development
134, 2397–2405.
Abstract ArticleMichos, O. Panman, L. Vintersten, K. Beier, K. Zeller, R. Zuniga, A. (2004). Gremlin-mediated BMP antagonism induces the epithelial-mesenchymal feedback signaling controlling metanephric kidney and limb organogenesis. Development
131, 3401–3410.
Abstract ArticleMiyamoto, N. Yoshida, M. Kuratani, S. Matsuo, I. Aizawa, S. (1997). Defects of urogenital development in mice lacking Emx2. Development
124, 1653–1664.
AbstractMiyazaki, Y. Oshima, K. Fogo, A. Hogan, B.L. Ichikawa, I. (2000). Bone morphogenetic protein 4 regulates the budding site and elongation of the mouse ureter. J Clin Invest
105, 863–873.
Abstract ArticleMiyazaki, Y. Oshima, K. Fogo, A. Ichikawa, I. (2003). Evidence that bone morphogenetic protein 4 has multiple biological functions during kidney and urinary tract development. Kidney Int
63, 835–844.
Abstract ArticleMoore, M.W. Klein, R.D. Farinas, I. Sauer, H. Armanini, M. Phillips, H. Reichardt, L.F. Ryan, A.M. Carver-Moore, K. Rosenthal, A. (1996). Renal and neuronal abnormalities in mice lacking GDNF. Nature
382, 76–79.
Abstract ArticleMoriyama, A. Kii, I. Sunabori, T. Kurihara, S. Takayama, I. Shimazaki, M. Tanabe, H. Oginuma, M. Fukayama, M. Matsuzaki, Y. et al. (2007). GFP transgenic mice reveal active canonical Wnt signal in neonatal brain and in adult liver and spleen. Genesis
45, 90–100.
Abstract ArticleMugford, J.W. Sipila, P. Kobayashi, A. Behringer, R.R. McMahon, A.P. (2008). Hoxd11 specifies a program of metanephric kidney development within the intermediate mesoderm of the mouse embryo. Dev Biol
319, 396–405.
Abstract ArticleMuller, U. Wang, D. Denda, S. Meneses, J.J. Pedersen, R.A. Reichardt, L.F. (1997). Integrin alpha8beta1 is critically important for epithelial-mesenchymal interactions during kidney morphogenesis. Cell
88, 603–613.
Abstract ArticleNakai, S. Sugitani, Y. Sato, H. Ito, S. Miura, Y. Ogawa, M. Nishi, M. Jishage, K. Minowa, O. Noda, T. (2003). Crucial roles of Brn1 in distal tubule formation and function in mouse kidney. Development
130, 4751–4759.
Abstract ArticleNarlis, M. Grote, D. Gaitan, Y. Boualia, S.K. Bouchard, M. (2007). Pax2 and pax8 regulate branching morphogenesis and nephron differentiation in the developing kidney. J Am Soc Nephrol
18, 1121–1129.
Abstract ArticleNatarajan, D. Marcos-Gutierrez, C. Pachnis, V. de Graaff, E. (2002). Requirement of signalling by receptor tyrosine kinase RET for the directed migration of enteric nervous system progenitor cells during mammalian embryogenesis. Development
129, 5151–5160.
AbstractNeave, B. Holder, N. Patient, R. (1997). A graded response to BMP-4 spatially coordinates patterning of the mesoderm and ectoderm in the zebrafish. Mech Dev
62, 183–195.
Abstract ArticleNeiss, W.F. (1982). Histogenesis of the loop of Henle in the rat kidney. Anat Embryol (Berl)
164, 315–330.
Abstract ArticleNguyen, V.H. Schmid, B. Trout, J. Connors, S.A. Ekker, M. Mullins, M.C. (1998). Ventral and lateral regions of the zebrafish gastrula, including the neural crest progenitors, are established by a bmp2b/swirl pathway of genes. Dev Biol
199, 93–110.
Abstract ArticleNishinakamura, R. Matsumoto, Y. Nakao, K. Nakamura, K. Sato, A. Copeland, N.G. Gilbert, D.J. Jenkins, N.A. Scully, S. Lacey, D.L. et al. (2001). Murine homolog of SALL1 is essential for ureteric bud invasion in kidney development. Development
128, 3105–3115.
AbstractNishinakamura, R. Osafune, K. (2006). Essential roles of Sall family genes in kidney development. J Physiol Sci
56, 131–136.
Abstract ArticleNyengaard, J.R. Bendtsen, T.F. (1992). Glomerular number and size in relation to age, kidney weight, and body surface in normal man. Anat Rec
232, 194–201.
Abstract ArticleObara-Ishihara, T. Kuhlman, J. Niswander, L. Herzlinger, D. (1999). The surface ectoderm is essential for nephric duct formation in intermediate mesoderm. Development
126, 1103–1108.
AbstractOhto, H. Kamada, S. Tago, K. Tominaga, S.I. Ozaki, H. Sato, S. Kawakami, K. (1999). Cooperation of six and eya in activation of their target genes through nuclear translocation of Eya. Mol Cell Biol
19, 6815–6824.
AbstractOhuchi, H. Hori, Y. Yamasaki, M. Harada, H. Sekine, K. Kato, S. Itoh, N. (2000). FGF10 acts as a major ligand for FGF receptor 2 IIIb in mouse multi-organ development. Biochem Biophys Res Commun
277, 643–649.
Abstract ArticleOliver, G. Wehr, R. Jenkins, N.A. Copeland, N.G. Cheyette, B.N. Hartenstein, V. Zipursky, S.L. Gruss, P. (1995). Homeobox genes and connective tissue patterning. Development
121, 693–705.
AbstractOliver, J.A. Maarouf, O. Cheema, F.H. Martens, T.P. Al-Awqati, Q. (2004). The renal papilla is a niche for adult kidney stem cells. J Clin Invest
114, 795–804.
AbstractOsafune, K. Takasato, M. Kispert, A. Asashima, M. Nishinakamura, R. (2006). Identification of multipotent progenitors in the embryonic mouse kidney by a novel colony-forming assay. Development
133, 151–161.
Abstract ArticleOxburgh, L. Chu, G.C. Michael, S.K. Robertson, E.J. (2004). TGFbeta superfamily signals are required for morphogenesis of the kidney mesenchyme progenitor population. Development
131, 4593–4605.
Abstract ArticleOxburgh, L. Dudley, A.T. Godin, R.E. Koonce, C.H. Islam, A. Anderson, D.C. Bikoff, E.K. Robertson, E.J. (2005). BMP4 substitutes for loss of BMP7 during kidney development. Dev Biol
286, 637–646.
Abstract ArticleOzaki, H. Watanabe, Y. Takahashi, K. Kitamura, K. Tanaka, A. Urase, K. Momoi, T. Sudo, K. Sakagami, J. Asano, M. et al. (2001). Six4, a putative myogenin gene regulator, is not essential for mouse embryonal development. Mol Cell Biol
21, 3343–3350.
Abstract ArticlePachnis, V. Mankoo, B. Costantini, F. (1993). Expression of the c-ret proto-oncogene during mouse embryogenesis. Development
119, 1005–1017.
AbstractPark, I.H. Arora, N. Huo, H. Maherali, N. Ahfeldt, T. Shimamura, A. Lensch, M.W. Cowan, C. Hochedlinger, K. Daley, G.Q. (2008). Disease-Specific Induced Pluripotent Stem Cells. Cell.
Park, J.S. Valerius, M.T. McMahon, A.P. (2007). Wnt/beta-catenin signaling regulates nephron induction during mouse kidney development. Development
134, 2533–2539.
Abstract ArticlePedersen, A. Skjong, C. Shawlot, W. (2005). Lim 1 is required for nephric duct extension and ureteric bud morphogenesis. Dev Biol
288, 571–581.
Abstract ArticlePellegrini, M. Pantano, S. Lucchini, F. Fumi, M. Forabosco, A. (1997). Emx2 developmental expression in the primordia of the reproductive and excretory systems. Anat Embryol (Berl)
196, 427–433.
Abstract ArticlePepicelli, C.V. Kispert, A. Rowitch, D.H. McMahon, A.P. (1997). GDNF induces branching and increased cell proliferation in the ureter of the mouse. Dev Biol
192, 193–198.
Abstract ArticlePichel, J.G. Shen, L. Sheng, H.Z. Granholm, A.C. Drago, J. Grinberg, A. Lee, E.J. Huang, S.P. Saarma, M. Hoffer, B.J. et al. (1996). Defects in enteric innervation and kidney development in mice lacking GDNF. Nature
382, 73–76.
Abstract ArticlePietila, I. Vainio, S. (2005). The embryonic aorta-gonad-mesonephros region as a generator of haematopoietic stem cells. Apmis
113, 804–812.
Abstract ArticlePlachov, D. Chowdhury, K. Walther, C. Simon, D. Guenet, J.L. Gruss, P. (1990). Pax8, a murine paired box gene expressed in the developing excretory system and thyroid gland. Development
110, 643–651.
AbstractPoladia, D.P. Kish, K. Kutay, B. Hains, D. Kegg, H. Zhao, H. Bates, C.M. (2006). Role of fibroblast growth factor receptors 1 and 2 in the metanephric mesenchyme. Dev Biol
291, 325–339.
Abstract ArticlePole, R.J. Qi, B.Q. Beasley, S.W. (2002). Patterns of apoptosis during degeneration of the pronephros and mesonephros. J Urol
167, 269–271.
Abstract ArticlePotter, S.S. Hartman, H.A. Kwan, K.M. Behringer, R.R. Patterson, L.T. (2007). Laser capture-microarray analysis of Lim1 mutant kidney development. Genesis
45, 432–439.
Abstract ArticleQiao, J. Bush, K.T. Steer, D.L. Stuart, R.O. Sakurai, H. Wachsman, W. Nigam, S.K. (2001). Multiple fibroblast growth factors support growth of the ureteric bud but have different effects on branching morphogenesis. Mech Dev
109, 123–135.
Abstract ArticleQiao, J. Uzzo, R. Obara-Ishihara, T. Degenstein, L. Fuchs, E. Herzlinger, D. (1999). FGF-7 modulates ureteric bud growth and nephron number in the developing kidney. Development
126, 547–554.
AbstractQuaggin, S.E. Kreidberg, J.A. (2008). Development of the renal glomerulus: good neighbors and good fences. Development
135, 609–620.
Abstract ArticleQuaggin, S.E. Schwartz, L. Cui, S. Igarashi, P. Deimling, J. Post, M. Rossant, J. (1999). The basic-helix-loop-helix protein pod1 is critically important for kidney and lung organogenesis. Development
126, 5771–5783.
AbstractRaatikainen-Ahokas, A. Hytonen, M. Tenhunen, A. Sainio, K. Sariola, H. (2000). BMP-4 affects the differentiation of metanephric mesenchyme and reveals an early anterior-posterior axis of the embryonic kidney. Dev Dyn
217, 146–158.
AbstractRevest, J.M. Suniara, R.K. Kerr, K. Owen, J.J. Dickson, C. (2001). Development of the thymus requires signaling through the fibroblast growth factor receptor R2-IIIb. J Immunol
167, 1954–1961.
AbstractRider, C.C. (2003). Interaction between glial-cell-line-derived neurotrophic factor (GDNF) and 2-O-sulphated heparin-related glycosaminoglycans. Biochem Soc Trans
31, 337–339.
Abstract ArticleSagrinati, C. Netti, G.S. Mazzinghi, B. Lazzeri, E. Liotta, F. Frosali, F. Ronconi, E. Meini, C. Gacci, M. Squecco, R. et al. (2006). Isolation and characterization of multipotent progenitor cells from the Bowman's capsule of adult human kidneys. J Am Soc Nephrol
17, 2443–2456.
Abstract ArticleSainio, K. (2003). Development of the mesonephric kidney. The kidney. From normal development to congenital disease Vize, C. Woolf, A. S. Bard, J. B. L. London: Academic Press; , 75–86.
Sainio, K. Hellstedt, P. Kreidberg, J.A. Saxen, L. Sariola, H. (1997). Differential regulation of two sets of mesonephric tubules by WT-1. Development
124, 1293–1299.
AbstractSainio, K. Suvanto, P. Davies, J. Wartiovaara, J. Wartiovaara, K. Saarma, M. Arumae, U. Meng, X. Lindahl, M. Pachnis, V. Sariola, H. (1997). Glial-cell-line-derived neurotrophic factor is required for bud initiation from ureteric epithelium. Development
124, 4077–4087.
AbstractSajithlal, G. Zou, D. Silvius, D. Xu, P.X. (2005). Eya 1 acts as a critical regulator for specifying the metanephric mesenchyme. Dev Biol
284, 323–336.
Abstract ArticleSakaki-Yumoto, M. Kobayashi, C. Sato, A. Fujimura, S. Matsumoto, Y. Takasato, M. Kodama, T. Aburatani, H. Asashima, M. Yoshida, N. Nishinakamura, R. (2006). The murine homolog of SALL4, a causative gene in Okihiro syndrome, is essential for embryonic stem cell proliferation, and cooperates with Sall1 in anorectal, heart, brain and kidney development. Development
133, 3005–3013.
Abstract ArticleSanchez, M.P. Silos-Santiago, I. Frisen, J. He, B. Lira, S.A. Barbacid, M. (1996). Renal agenesis and the absence of enteric neurons in mice lacking GDNF. Nature
382, 70–73.
Abstract ArticleSaxén, L. (1987). Organogenesis of the kidney. Developmental and Cell Biology Series 19. Barlow, P. B. G. P. W. White, C. C. Cambridge: Harvard University Press;
Schmidt-Ott, K.M. Masckauchan, T.N. Chen, X. Hirsh, B.J. Sarkar, A. Yang, J. Paragas, N. Wallace, V.A. Dufort, D. Pavlidis, P. et al. (2007). beta-catenin/TCF/Lef controls a differentiation-associated transcriptional program in renal epithelial progenitors. Development
134, 3177–3190.
Abstract ArticleSchnabel, C.A. Godin, R.E. Cleary, M.L. (2003). Pbx1 regulates nephrogenesis and ureteric branching in the developing kidney. Dev Biol
254, 262–276.
Abstract ArticleSchuchardt, A. D’Agati, V. Larsson-Blomberg, L. Costantini, F. Pachnis, V. (1994). Defects in the kidney and enteric nervous system of mice lacking the tyrosine kinase receptor Ret. Nature
367, 380–383.
Abstract ArticleSchuldiner, M. Yanuka, O. Itskovitz-Eldor, J. Melton, D.A. Benvenisty, N. (2000). Effects of eight growth factors on the differentiation of cells derived from human embryonic stem cells. Proc Natl Acad Sci U S A
97, 11307–11312.
Abstract ArticleSelf, M. Lagutin, O.V. Bowling, B. Hendrix, J. Cai, Y. Dressler, G.R. Oliver, G. (2006). Six2 is required for suppression of nephrogenesis and progenitor renewal in the developing kidney. Embo J
25, 5214–5228.
Abstract ArticleShakya, R. Jho, E.H. Kotka, P. Wu, Z. Kholodilov, N. Burke, R. D’Agati, V. Costantini, F. (2005). The role of GDNF in patterning the excretory system. Dev Biol
283, 70–84.
Abstract ArticleShawlot, W. Behringer, R.R. (1995). Requirement for Lim1 in head-organizer function. Nature
374, 425–430.
Abstract ArticleSmith, C. Mackay, S. (1991). Morphological development and fate of the mouse mesonephros. J Anat
174, 171–184.
AbstractSmith, H.W. (1959). From fish to philosopher. The Story of Our Internal Environment. Boston, MA: Little, Brown & Co;
So, P.L. Danielian, P.S. (1999). Cloning and expression analysis of a mouse gene related to Drosophila odd-skipped. Mech Dev
84, 157–160.
Abstract ArticleSrinivas, S. Wu, Z. Chen, C.M. D’Agati, V. Costantini, F. (1999). Dominant effects of RET receptor misexpression and ligand-independent RET signaling on ureteric bud development. Development
126, 1375–1386.
AbstractStark, K. Vainio, S. Vassileva, G. McMahon, A.P. (1994). Epithelial transformation of metanephric mesenchyme in the developing kidney regulated by Wnt-4. Nature
372, 679–683.
Abstract ArticleTada, M. Concha, M.L. Heisenberg, C.P. (2002). Non-canonical Wnt signalling and regulation of gastrulation movements. Semin Cell Dev Biol
13, 251–260.
Abstract ArticleTaelman, V. Van Campenhout, C. Solter, M. Pieler, T. Bellefroid, E.J. (2006). The Notch-effector HRT1 gene plays a role in glomerular development and patterning of the Xenopus pronephros anlagen. Development
133, 2961–2971.
Abstract ArticleTanaka, M. Xiao, H. Kiuchi, K. (2002). Heparin facilitates glial cell line-derived neurotrophic factor signal transduction. Neuroreport
13, 1913–1916.
Abstract ArticleTang, M.J. Cai, Y. Tsai, S.J. Wang, Y.K. Dressler, G.R. (2002). Ureteric bud outgrowth in response to RET activation is mediated by phosphatidylinositol 3-kinase. Dev Biol
243, 128–136.
Abstract ArticleTang, M.J. Worley, D. Sanicola, M. Dressler, G.R. (1998). The RET-glial cell-derived neurotrophic factor (GDNF) pathway stimulates migration and chemoattraction of epithelial cells. J Cell Biol
142, 1337–1345.
Abstract ArticleTena, J.J. Neto, A. de la Calle-Mustienes, E. Bras-Pereira, C. Casares, F. Gomez-Skarmeta, J.L. (2007). Odd-skipped genes encode repressors that control kidney development. Dev Biol
301, 518–531.
Abstract ArticleTorres, M. Gomez-Pardo, E. Dressler, G.R. Gruss, P. (1995). Pax-2 controls multiple steps of urogenital development. Development
121, 4057–4065.
AbstractTsang, T.E. Shawlot, W. Kinder, S.J. Kobayashi, A. Kwan, K.M. Schughart, K. Kania, A. Jessell, T.M. Behringer, R.R. Tam, P.P. (2000). Lim1 activity is required for intermediate mesoderm differentiation in the mouse embryo. Dev Biol
223, 77–90.
Abstract ArticleUllrich, K.J. Schmidt-Nielson, B. O’Dell, R. Pehling, G. Gottschalk, C.W. Lassiter, W.E. Mylle, M. (1963). Micropuncture study of composition of proximal and distal tubular fluid in rat kidney. Am J Physiol
204, 527–531.
AbstractVetter, M.R. Gibley, C.W. (1966). Morphogenesis and histochemistry of the developing mouse kidney. J Morphol
120, 135–155.
Abstract ArticleVigneau, C. Polgar, K. Striker, G. Elliott, J. Hyink, D. Weber, O. Fehling, H.J. Keller, G. Burrow, C. Wilson, P. (2007). Mouse embryonic stem cell-derived embryoid bodies generate progenitors that integrate long term into renal proximal tubules in vivo. J Am Soc Nephrol
18, 1709–1720.
Abstract ArticleVillanueva, S. Cespedes, C. Vio, C.P. (2006). Ischemic acute renal failure induces the expression of a wide range of nephrogenic proteins. Am J Physiol Regul Integr Comp Physiol
290, R861–870.
AbstractVize, P.D. Seufert, D.W. Carroll, T.J. Wallingford, J.B. (1997). Model systems for the study of kidney development: use of the pronephros in the analysis of organ induction and patterning. Dev Biol
188, 189–204.
Abstract ArticleWaddington, C.H. (1938). The morphogenetic function of vestigial organ in the chick. J Exp Biol 15, 371–376.
Wang, P. Pereira, F.A. Beasley, D. Zheng, H. (2003). Presenilins are required for the formation of comma- and S-shaped bodies during nephrogenesis. Development
130, 5019–5029.
Abstract ArticleWang, Q. Lan, Y. Cho, E.S. Maltby, K.M. Jiang, R. (2005). Odd-skipped related 1 (Odd 1) is an essential regulator of heart and urogenital development. Dev Biol
288, 582–594.
Abstract ArticleWatanabe, T. Costantini, F. (2004). Real-time analysis of ureteric bud branching morphogenesis in vitro. Dev Biol
271, 98–108.
Abstract ArticleWeller, A. Sorokin, L. Illgen, E.M. Ekblom, P. (1991). Development and growth of mouse embryonic kidney in organ culture and modulation of development by soluble growth factor. Dev Biol
144, 248–261.
Abstract ArticleWellik, D.M. Hawkes, P.J. Capecchi, M.R. (2002). Hox11 paralogous genes are essential for metanephric kidney induction. Genes Dev
16, 1423–1432.
Abstract ArticleWilson, J.G. Warkany, J. (1948). Malformations in the genito-urinary tract induced by maternal vitamin A deficiency in the rat. Am J Anat
83, 357–407.
Abstract ArticleWingert, R.A. Selleck, R. Yu, J. Song, H.D. Chen, Z. Song, A. Zhou, Y. Thisse, B. Thisse, C. McMahon, A.P. Davidson, A.J. (2007). The cdx genes and retinoic acid control the positioning and segmentation of the zebrafish pronephros. PLoS Genet
3, 1922–1938.
Abstract ArticleWinnier, G. Blessing, M. Labosky, P.A. Hogan, B.L. (1995). Bone morphogenetic protein-4 is required for mesoderm formation and patterning in the mouse. Genes Dev
9, 2105–2116.
Abstract ArticleXu, P.X. Adams, J. Peters, H. Brown, M.C. Heaney, S. Maas, R. (1999). Eya1-deficient mice lack ears and kidneys and show abnormal apoptosis of organ primordia. Nat Genet
23, 113–117.
Abstract ArticleXu, P.X. Zheng, W. Huang, L. Maire, P. Laclef, C. Silvius, D. (2003). Six1 is required for the early organogenesis of mammalian kidney. Development
130, 3085–3094.
Abstract ArticleXu, R.H. Ault, K.T. Kim, J. Park, M.J. Hwang, Y.S. Peng, Y. Sredni, D. Kung, H. (1999). Opposite effects of FGF and BMP-4 on embryonic blood formation: roles of PV.1 and GATA-2. Dev Biol
208, 352–361.
Abstract ArticleYamanaka, S. (2008). Pluripotency and nuclear reprogramming. Philos Trans R Soc Lond B Biol Sci
363, 2079–2087.
Abstract ArticleYoung, H.M. Hearn, C.J. Farlie, P.G. Canty, A.J. Thomas, P.Q. Newgreen, D.F. (2001). GDNF is a chemoattractant for enteric neural cells. Dev Biol
229, 503–516.
Abstract ArticleYu, J. McMahon, A. P. Valerius, M.T. (2004). Recent genetic studies of mouse kidney development. Curr Opin Genet Dev
14, 550–557.
Abstract ArticleYuan, H.T. Tipping, P.G. Li, X.Z. Long, D.A. Woolf, A.S. (2002). Angiopoietin correlates with glomerular capillary loss in anti-glomerular basement membrane glomerulonephritis. Kidney Int
61, 2078–2089.
Abstract ArticleZhao, H. Kegg, H. Grady, S. Truong, H.T. Robinson, M.L. Baum, M. Bates, C.M. (2004). Role of fibroblast growth factor receptors 1 and 2 in the ureteric bud. Dev Biol
276, 403–415.
Article