dlx and sp6-9 Control Optic Cup Regeneration in a Prototypic Eye
暂无分享,去创建一个
[1] Olaf Strauss,et al. The retinal pigment epithelium in visual function. , 2005, Physiological reviews.
[2] E. Wimmer,et al. A conserved function of the zinc finger transcription factor Sp8/9 in allometric appendage growth in the milkweed bug Oncopeltus fasciatus , 2009, Development Genes and Evolution.
[3] W. McGinnis,et al. Evolution of Developmental Control Mechanisms Co-option of an anteroposterior head axis patterning system for proximodistal patterning of appendages in early bilaterian evolution , 2010 .
[4] P. Reddien,et al. Fundamentals of planarian regeneration. , 2004, Annual review of cell and developmental biology.
[5] Adam L. Bermange,et al. Identification of genes needed for regeneration, stem cell function, and tissue homeostasis by systematic gene perturbation in planaria. , 2005, Developmental cell.
[6] P. Reddien,et al. Smed-βcatenin-1 Is Required for Anteroposterior Blastema Polarity in Planarian Regeneration , 2008, Science.
[7] Serena J Silver,et al. Signaling circuitries in development: insights from the retinal determination gene network , 2004, Development.
[8] K. Watanabe,et al. Organization and Regeneration Ability of Spontaneous Supernumerary Eyes in Planarians —Eye Regeneration Field and Pathway Selection by Optic Nerves— , 2000, Zoological science.
[9] Tetsutaro Hayashi,et al. Single‐cell gene profiling of planarian stem cells using fluorescent activated cell sorting and its “index sorting” function for stem cell research , 2010, Development, growth & differentiation.
[10] D. L. Stenkamp. Neurogenesis in the fish retina. , 2007, International review of cytology.
[11] Ross Cagan,et al. Principles of Drosophila eye differentiation. , 2009, Current topics in developmental biology.
[12] U. Banerjee,et al. Combinatorial signaling in the specification of primary pigment cells in the Drosophila eye , 2007, Development.
[13] T. Okada. Cellular metaplasia or transdifferentiation as a model for retinal cell differentiation. , 1980, Current topics in developmental biology.
[14] A. Sánchez Alvarado,et al. Double-stranded RNA specifically disrupts gene expression during planarian regeneration. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[15] E. Saló,et al. The BMP pathway is essential for re-specification and maintenance of the dorsoventral axis in regenerating and intact planarians. , 2007, Developmental biology.
[16] G. Schütz,et al. Functional analysis of alternatively spliced tyrosinase gene transcripts. , 1988, The EMBO journal.
[17] Kenneth M. Yamada,et al. The Krüppel-like Factor Epiprofin Is Expressed by Epithelium of Developing Teeth, Hair Follicles, and Limb Buds and Promotes Cell Proliferation* , 2004, Journal of Biological Chemistry.
[18] Adam L. Bermange,et al. BMP signaling regulates the dorsal planarian midline and is needed for asymmetric regeneration , 2007, Development.
[19] Antoine H. F. M. Peters,et al. A Bruno-like gene is required for stem cell maintenance in planarians. , 2006, Developmental Cell.
[20] Elizabeth C. McDonald,et al. Analysis of the Otd-dependent transcriptome supports the evolutionary conservation of CRX/OTX/OTD functions in flies and vertebrates. , 2008, Developmental biology.
[21] I. Darby,et al. Histochemical localization of cell proliferation using in situ hybridization for histone mRNA. , 2006, Methods in molecular biology.
[22] V. Gremigni,et al. The genetic network of prototypic planarian eye regeneration is Pax6 independent. , 2002, Development.
[23] A. Sánchez Alvarado,et al. Molecular analysis of stem cells and their descendants during cell turnover and regeneration in the planarian Schmidtea mediterranea. , 2008, Cell stem cell.
[24] Sanae Sakami,et al. Downregulation of Otx2 in the dedifferentiated RPE cells of regenerating newt retina. , 2005, Brain research. Developmental brain research.
[25] E. Wimmer,et al. A clustered set of three Sp-family genes is ancestral in the Metazoa: evidence from sequence analysis, protein domain structure, developmental expression patterns and chromosomal location , 2010, BMC Evolutionary Biology.
[26] Irving E. Wang,et al. Clonogenic Neoblasts Are Pluripotent Adult Stem Cells That Underlie Planarian Regeneration , 2011, Science.
[27] J. Rubenstein,et al. Developmental functions of the Distal-less/Dlx homeobox genes. , 2002, Development.
[28] Detlev Arendt,et al. The ‘division of labour’ model of eye evolution , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[29] J. Rubenstein,et al. Role of Dlx-1 and Dlx-2 genes in patterning of the murine dentition. , 1997, Development.
[30] P. Bovolenta,et al. OTX2 Activates the Molecular Network Underlying Retina Pigment Epithelium Differentiation* , 2003, Journal of Biological Chemistry.
[31] Peter W. Reddien,et al. SMEDWI-2 Is a PIWI-Like Protein That Regulates Planarian Stem Cells , 2005, Science.
[32] K. Agata,et al. Planarians Maintain a Constant Ratio of Different Cell Types During Changes in Body Size by Using the Stem Cell System , 2009, Zoological science.
[33] P. Reddien,et al. A wound-induced Wnt expression program controls planarian regeneration polarity , 2009, Proceedings of the National Academy of Sciences.
[34] Teresa Adell,et al. Smed-Evi/Wntless is required for β-catenin-dependent and -independent processes during planarian regeneration , 2009, Development.
[35] V. Gremigni,et al. Djeyes absent (Djeya) controls prototypic planarian eye regeneration by cooperating with the transcription factor Djsix-1. , 2004, Developmental biology.
[36] G. Mardon,et al. Mouse Dach2 mutants do not exhibit gross defects in eye development or brain function , 2006, Genesis.
[37] W. Birchmeier,et al. Role of Epiprofin, a zinc-finger transcription factor, in limb development. , 2010, Developmental biology.
[38] K. Agata,et al. Distinct structural domains in the planarian brain defined by the expression of evolutionarily conserved homeobox genes , 1999, Development Genes and Evolution.
[39] E. Speel,et al. Rapid Synthesis of Biotin-, Digoxigenin-, Trinitrophenyl-, and Fluorochrome-labeled Tyramides and Their Application for In Situ Hybridization Using CARD Amplification , 1998, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[40] P. Reddien,et al. Planarian regeneration involves distinct stem cell responses to wounds and tissue absence. , 2010, Developmental biology.
[41] T. Schoen,et al. Isolation and expression of homeobox genes from the embryonic chicken eye. , 1997, Molecular vision.
[42] Z. Kozmík. The role of Pax genes in eye evolution , 2008, Brain Research Bulletin.
[43] J. C. Belmonte,et al. Sp8 and Sp9, two closely related buttonhead-like transcription factors, regulate Fgf8 expression and limb outgrowth in vertebrate embryos , 2004, Development.
[44] Jochen C. Rink,et al. β-Catenin Defines Head Versus Tail Identity During Planarian Regeneration and Homeostasis , 2008, Science.
[45] Kazuho Ikeo,et al. FGFR-related gene nou-darake restricts brain tissues to the head region of planarians , 2002, Nature.
[46] J. Rubenstein,et al. Dlx1 and Dlx2 function is necessary for terminal differentiation and survival of late-born retinal ganglion cells in the developing mouse retina , 2005, Development.
[47] Teresa Adell,et al. Silencing of Smed-βcatenin1 generates radial-like hypercephalized planarians , 2008, Development.
[48] Yukiko Sato,et al. Comparative study of eye defective worm 'menashi' and regenerating wild-type in planarian, Dugesia ryukyuensis. , 2005, Pigment cell research.
[49] Dan-Eric Nilsson,et al. The evolution of eyes and visually guided behaviour , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[50] K. Ikeo,et al. Searching for the prototypic eye genetic network: Sine oculis is essential for eye regeneration in planarians. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[51] D. Johnson,et al. orthodenticle is required for photoreceptor cell development in the Drosophila eye. , 1996, Developmental biology.
[52] D. Nilsson. Eye evolution: a question of genetic promiscuity , 2004, Current Opinion in Neurobiology.
[53] S. Hase,et al. Characterization of the pigment produced by the planarian, Dugesia ryukyuensis. , 2006, Pigment cell research.
[54] Bret J. Pearson,et al. Formaldehyde‐based whole‐mount in situ hybridization method for planarians , 2009, Developmental dynamics : an official publication of the American Association of Anatomists.
[55] A. Sánchez Alvarado,et al. Bromodeoxyuridine specifically labels the regenerative stem cells of planarians. , 2000, Developmental biology.
[56] Hidefumi Orii,et al. Bone morphogenetic protein is required for dorso‐ventral patterning in the planarian Dugesia japonica , 2007, Development, growth & differentiation.
[57] R. Mann,et al. Non-Redundant Selector and Growth-Promoting Functions of Two Sister Genes, buttonhead and Sp1, in Drosophila Leg Development , 2010, PLoS genetics.
[58] P. Dreze,et al. The development of several organs and appendages is impaired in mice lacking Sp6 , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[59] G. Rubin,et al. dachshund encodes a nuclear protein required for normal eye and leg development in Drosophila. , 1994, Development.
[60] Sofia M. C. Robb,et al. MAKER: an easy-to-use annotation pipeline designed for emerging model organism genomes. , 2007, Genome research.