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From neural tube to spinal cord: The dynamic journey of the dorsal neuroepithelium. , Ventriglia S, Kalcheim C., Dev Biol. July 1, 2024; 511 26-38.
Pinhead antagonizes Admp to promote notochord formation. , Itoh K, Ossipova O, Sokol SY ., iScience. June 25, 2021; 24 (6): 102520.
Sox17 and β-catenin co-occupy Wnt-responsive enhancers to govern the endoderm gene regulatory network. , Mukherjee S , Chaturvedi P , Rankin SA , Rankin SA , Fish MB, Wlizla M , Paraiso KD , MacDonald M, Chen X, Weirauch MT, Blitz IL , Cho KW , Zorn AM ., Elife. September 7, 2020; 9
Assembly of protein complexes restricts diffusion of Wnt3a proteins. , Takada R, Mii Y , Krayukhina E, Maruyama Y, Mio K, Sasaki Y, Shinkawa T, Pack CG, Sako Y, Sato C, Uchiyama S, Takada S., Commun Biol. October 10, 2018; 1 165.
Bighead is a Wnt antagonist secreted by the Xenopus Spemann organizer that promotes Lrp6 endocytosis. , Ding Y , Colozza G , Sosa EA, Moriyama Y , Rundle S, Salwinski L, De Robertis EM ., Proc Natl Acad Sci U S A. September 25, 2018; 115 (39): E9135-E9144.
Genomic integration of Wnt/ β-catenin and BMP/Smad1 signaling coordinates foregut and hindgut transcriptional programs. , Stevens ML , Chaturvedi P , Rankin SA , Rankin SA , Macdonald M, Jagannathan S, Yukawa M, Barski A, Zorn AM ., Development. April 1, 2017; 144 (7): 1283-1295.
Thyroid hormone activates Wnt/ β-catenin signaling involved in adult epithelial development during intestinal remodeling in Xenopus laevis. , Hasebe T , Fujimoto K , Kajita M, Ishizuya-Oka A ., Cell Tissue Res. August 1, 2016; 365 (2): 309-18.
Secreted Frizzled-related Protein 2 (sFRP2) Redirects Non-canonical Wnt Signaling from Fz7 to Ror2 during Vertebrate Gastrulation. , Brinkmann EM, Mattes B, Kumar R, Hagemann AI, Gradl D , Scholpp S, Steinbeisser H , Kaufmann LT, Özbek S., J Biol Chem. June 24, 2016; 291 (26): 13730-42.
Identifying domains of EFHC1 involved in ciliary localization, ciliogenesis, and the regulation of Wnt signaling. , Zhao Y, Shi J, Winey M, Klymkowsky MW ., Dev Biol. March 15, 2016; 411 (2): 257-265.
Structure and functional properties of Norrin mimic Wnt for signalling with Frizzled4, Lrp5/6, and proteoglycan. , Chang TH, Hsieh FL, Zebisch M, Harlos K, Elegheert J, Jones EY., Elife. July 9, 2015; 4
Pax8 and Pax2 are specifically required at different steps of Xenopus pronephros development. , Buisson I , Le Bouffant R , Futel M, Riou JF , Umbhauer M ., Dev Biol. January 15, 2015; 397 (2): 175-90.
Chibby functions in Xenopus ciliary assembly, embryonic development, and the regulation of gene expression. , Shi J, Zhao Y, Galati D, Winey M, Klymkowsky MW ., Dev Biol. November 15, 2014; 395 (2): 287-98.
sizzled function and secreted factor network dynamics. , Shi J, Zhang H , Dowell RD , Klymkowsky MW ., Biol Open. March 15, 2012; 1 (3): 286-94.
Characterization of sFRP2-like in amphioxus: insights into the evolutionary conservation of Wnt antagonizing function. , Kong W, Yang Y , Zhang T, Shi DL , Zhang Y , Zhang Y ., Evol Dev. January 1, 2012; 14 (2): 168-77.
Exogenously administered secreted frizzled related protein 2 ( Sfrp2) reduces fibrosis and improves cardiac function in a rat model of myocardial infarction. , He W, Zhang L, Ni A, Zhang Z , Mirotsou M, Mao L, Pratt RE, Dzau VJ., Proc Natl Acad Sci U S A. December 7, 2010; 107 (49): 21110-5.
The Wnt antagonists Frzb-1 and Crescent locally regulate basement membrane dissolution in the developing primary mouth. , Dickinson AJ , Sive HL ., Development. April 1, 2009; 136 (7): 1071-81.
Secreted Frizzled-related protein 2 is a procollagen C proteinase enhancer with a role in fibrosis associated with myocardial infarction. , Kobayashi K, Luo M, Zhang Y , Wilkes DC, Ge G, Grieskamp T, Yamada C, Liu TC, Huang G, Basson CT, Kispert A, Greenspan DS, Sato TN., Nat Cell Biol. January 1, 2009; 11 (1): 46-55.
Embryonic dorsal- ventral signaling: secreted frizzled-related proteins as inhibitors of tolloid proteinases. , Lee HX , Ambrosio AL, Reversade B , De Robertis EM ., Cell. January 13, 2006; 124 (1): 147-59.
Macroarray-based analysis of tail regeneration in Xenopus laevis larvae. , Tazaki A , Kitayama A, Terasaka C, Watanabe K , Ueno N , Mochii M ., Dev Dyn. August 1, 2005; 233 (4): 1394-404.
Comparative genomics on Dkk1 orthologs. , Katoh Y, Katoh M., Int J Oncol. July 1, 2005; 27 (1): 275-9.
Identification of neural genes using Xenopus DNA microarrays. , Shin Y , Kitayama A, Koide T, Peiffer DA, Mochii M , Liao A, Ueno N , Cho KW ., Dev Dyn. February 1, 2005; 232 (2): 432-44.
Systematic screening for genes specifically expressed in the anterior neuroectoderm during early Xenopus development. , Takahashi N, Tochimoto N, Ohmori SY, Mamada H, Itoh M, Inamori M, Shinga J, Osada S, Taira M ., Int J Dev Biol. January 1, 2005; 49 (8): 939-51.
Temporal regulation of global gene expression and cellular morphology in Xenopus kidney cells in response to clinorotation. , Kitamoto J, Fukui A , Asashima M ., Adv Space Res. January 1, 2005; 35 (9): 1654-61.
Exploration of the extracellular space by a large-scale secretion screen in the early Xenopus embryo. , Pera EM , Hou S, Strate I, Wessely O , De Robertis EM ., Int J Dev Biol. January 1, 2005; 49 (7): 781-96.
Expression analysis of chick Wnt and frizzled genes and selected inhibitors in early chick patterning. , Chapman SC, Brown R, Lees L, Schoenwolf GC, Lumsden A., Dev Dyn. March 1, 2004; 229 (3): 668-76.
Wnt-6 is expressed in the ureter bud and induces kidney tubule development in vitro. , Itäranta P, Lin Y, Peräsaari J, Roël G, Destrée O, Vainio S., Genesis. April 1, 2002; 32 (4): 259-68.
Cloning and expression of the Wnt antagonists Sfrp-2 and Frzb during chick development. , Ladher RK, Church VL, Allen S, Robson L, Abdelfattah A, Brown NA, Hattersley G, Rosen V, Luyten FP, Dale L , Francis-West PH., Dev Biol. February 15, 2000; 218 (2): 183-98.
Cloning and characterization of a secreted frizzled-related protein that is expressed by the retinal pigment epithelium. , Chang JT, Esumi N, Moore K, Li Y, Zhang S, Chew C, Goodman B, Rattner A, Moody S , Stetten G, Campochiaro PA, Zack DJ., Hum Mol Genet. April 1, 1999; 8 (4): 575-83.