Spatial transcriptomics reveals a conserved segment polarity program that governs muscle patterning in Nematostella vectensis
暂无分享,去创建一个
[1] P. Müller,et al. Analysis of SMAD1/5 target genes in a sea anemone reveals ZSWIM4-6 as a novel BMP signaling modulator , 2022, bioRxiv.
[2] O. Pourquié,et al. Patterning with clocks and genetic cascades: Segmentation and regionalization of vertebrate versus insect body plans , 2021, PLoS genetics.
[3] Mohammed Muzamil Khan,et al. Advances in spatial transcriptomic data analysis , 2021, Genome research.
[4] B. Göttgens,et al. Integration of spatial and single-cell transcriptomic data elucidates mouse organogenesis , 2021, Nature biotechnology.
[5] N. Friedman,et al. NovoSpaRc: flexible spatial reconstruction of single-cell gene expression with optimal transport , 2021, Nature Protocols.
[6] V. Marx. Method of the Year: spatially resolved transcriptomics , 2021, Nature Methods.
[7] J. Juárez-Morales,et al. Evolution of lbx spinal cord expression and function , 2020, bioRxiv.
[8] Evan Z. Macosko,et al. Highly sensitive spatial transcriptomics at near-cellular resolution with Slide-seqV2 , 2020, Nature Biotechnology.
[9] M. Kadota,et al. Novel developmental bases for the evolution of hypobranchial muscles in vertebrates , 2020, BMC biology.
[10] U. Technau. Gastrulation and germ layer formation in the sea anemone Nematostella vectensis and other cnidarians , 2020, Mechanisms of Development.
[11] Toshio Takahashi. Comparative Aspects of Structure and Function of Cnidarian Neuropeptides , 2020, Frontiers in Endocrinology.
[12] M. Gibson,et al. Feeding-dependent tentacle development in the sea anemone Nematostella vectensis , 2020, Nature Communications.
[13] A. van Oudenaarden,et al. Single-cell and spatial transcriptomics reveal somitogenesis in gastruloids , 2020, Nature.
[14] Candace Moore,et al. Segmentation , 2020, Radiopaedia.org.
[15] W. R. Williamson,et al. Unc-4 acts to promote neuronal identity and development of the take-off circuit in the Drosophila CNS , 2019, bioRxiv.
[16] C. Grimmelikhuijzen,et al. Global Neuropeptide Annotations From the Genomes and Transcriptomes of Cubozoa, Scyphozoa, Staurozoa (Cnidaria: Medusozoa), and Octocorallia (Cnidaria: Anthozoa) , 2019, Front. Endocrinol..
[17] Toyotaka Ishibashi,et al. Single cell transcriptomic landscapes of pattern formation, proliferation and growth in Drosophila wing imaginal discs , 2019, Development.
[18] Patrick R. H. Steinmetz. A non-bilaterian perspective on the development and evolution of animal digestive systems , 2019, Cell and Tissue Research.
[19] Evan Z. Macosko,et al. Slide-seq: A scalable technology for measuring genome-wide expression at high spatial resolution , 2019, Science.
[20] D. Meyerholz,et al. Allograft Inflammatory Factor 1 as an Immunohistochemical Marker for Macrophages in Multiple Tissues and Laboratory Animal Species. , 2018, Comparative medicine.
[21] M. Gibson,et al. An axial Hox code controls tissue segmentation and body patterning in Nematostella vectensis , 2018, Science.
[22] Lars Hering,et al. Expression of NK cluster genes in the onychophoran Euperipatoides rowelli: implications for the evolution of NK family genes in nephrozoans , 2018, EvoDevo.
[23] A. Tanay,et al. Cnidarian Cell Type Diversity and Regulation Revealed by Whole-Organism Single-Cell RNA-Seq , 2018, Cell.
[24] Patrick R. H. Steinmetz,et al. Gut-like ectodermal tissue in a sea anemone challenges germ layer homology , 2017, Nature Ecology & Evolution.
[25] M. Martindale,et al. Antagonistic BMP–cWNT signaling in the cnidarian Nematostella vectensis reveals insight into the evolution of mesoderm , 2017, Proceedings of the National Academy of Sciences.
[26] Nikolaus Rajewsky,et al. The Drosophila embryo at single-cell transcriptome resolution , 2017, Science.
[27] Grigory Genikhovich,et al. Pre-bilaterian origin of the blastoporal axial organizer , 2016, Nature Communications.
[28] J. Marioni,et al. High-throughput spatial mapping of single-cell RNA-seq data to tissue of origin , 2015, Nature Biotechnology.
[29] D. Iber,et al. Axis Patterning by BMPs: Cnidarian Network Reveals Evolutionary Constraints , 2015, Cell reports.
[30] T. Fujisawa,et al. Sequential actions of β-catenin and Bmp pattern the oral nerve net in Nematostella vectensis , 2014, Nature Communications.
[31] F. Rentzsch,et al. RGM regulates BMP-mediated secondary axis formation in the sea anemone Nematostella vectensis. , 2014, Cell reports.
[32] Naoki Irie,et al. The evolutionary origin of the vertebrate body plan: the problem of head segmentation. , 2014, Annual review of genomics and human genetics.
[33] Morgane Thomas-Chollier,et al. Molecular insights into the origin of the Hox-TALE patterning system , 2014, eLife.
[34] Olivier Pourquié,et al. Formation and segmentation of the vertebrate body axis. , 2013, Annual review of cell and developmental biology.
[35] M. Gibson,et al. Identification and In Vivo Characterization of NvFP-7R, a Developmentally Regulated Red Fluorescent Protein of Nematostella vectensis , 2010, PloS one.
[36] D. Arendt,et al. Hedgehog Signaling Regulates Segment Formation in the Annelid Platynereis , 2010, Science.
[37] I. Burtscher,et al. Foxa2 regulates polarity and epithelialization in the endoderm germ layer of the mouse embryo , 2009, Development.
[38] M. Westerfield,et al. Lbx2 regulates formation of myofibrils , 2009, BMC Developmental Biology.
[39] Soon Cheol Park,et al. Paired-Like Subclass Homeobox Genes from the Clitellate Annelid Perionyx excavatus , 2008, Biochemical Genetics.
[40] Karl R. Wotton,et al. Comparative genomics of Lbx loci reveals conservation of identical Lbx ohnologs in bony vertebrates , 2008, BMC Evolutionary Biology.
[41] M. Vervoort,et al. Complementary striped expression patterns of NK homeobox genes during segment formation in the annelid Platynereis. , 2008, Developmental biology.
[42] Toshihiko Ogura,et al. Csrp1 regulates dynamic cell movements of the mesendoderm and cardiac mesoderm through interactions with Dishevelled and Diversin , 2007, Proceedings of the National Academy of Sciences.
[43] S. Berking,et al. Non-commercial Research and Educational Use including without Limitation Use in Instruction at Your Institution, Sending It to Specific Colleagues That You Know, and Providing a Copy to Your Institution's Administrator. All Other Uses, Reproduction and Distribution, including without Limitation Comm , 2022 .
[44] David Q. Matus,et al. Pre-Bilaterian Origins of the Hox Cluster and the Hox Code: Evidence from the Sea Anemone, Nematostella vectensis , 2007, PloS one.
[45] T. Holstein,et al. Asymmetric expression of the BMP antagonists chordin and gremlin in the sea anemone Nematostella vectensis: implications for the evolution of axial patterning. , 2006, Developmental biology.
[46] B. Zhu,et al. Minimal ProtoHox cluster inferred from bilaterian and cnidarian Hox complements , 2006, Nature.
[47] B. Schierwater,et al. Axial Patterning and Diversification in the Cnidaria Predate the Hox System , 2006, Current Biology.
[48] M. C. Jørgensen,et al. Endodermal expression of Nkx6 genes depends differentially on Pdx1. , 2005, Developmental biology.
[49] N. Papalopulu,et al. Identification of novel genes affecting mesoderm formation and morphogenesis through an enhanced large scale functional screen in Xenopus , 2005, Mechanisms of Development.
[50] U. Technau,et al. Analysis of forkhead and snail expression reveals epithelial-mesenchymal transitions during embryonic and larval development of Nematostella vectensis. , 2004, Developmental biology.
[51] F. Pröls,et al. Control of the temporal and spatial Uncx4.1 expression in the paraxial mesoderm of avian embryos , 2004, Anatomy and Embryology.
[52] B. Hogan,et al. The forkhead genes, Foxc1 and Foxc2, regulate paraxial versus intermediate mesoderm cell fate. , 2004, Developmental biology.
[53] C. Rickert,et al. The ladybird homeobox genes are essential for the specification of a subpopulation of neural cells. , 2004, Developmental biology.
[54] J. Finnerty,et al. Investigating the origins of triploblasty: `mesodermal' gene expression in a diploblastic animal, the sea anemone Nematostella vectensis (phylum, Cnidaria; class, Anthozoa) , 2004, Development.
[55] E. Seaver,et al. Segmentation: mono- or polyphyletic? , 2003, The International journal of developmental biology.
[56] C. Wright,et al. The concerted action of Meox homeobox genes is required upstream of genetic pathways essential for the formation, patterning and differentiation of somites , 2003, Development.
[57] D. Kioussis,et al. The homeobox gene Hex is required in definitive endodermal tissues for normal forebrain, liver and thyroid formation. , 2000, Development.
[58] O. Pourquié,et al. Segmentation of the paraxial mesoderm and vertebrate somitogenesis. , 2000, Current topics in developmental biology.
[59] P. Gruss,et al. Uncx 4 . 1 is required for the formation of the pedicles and proximal ribs and acts upstream of Pax 9 , 2000 .
[60] B. Herrmann,et al. A mouse gene of the paired-related homeobox class expressed in the caudal somite compartment and in the developing vertebral column, kidney and nervous system , 1997, Development Genes and Evolution.
[61] K. Jagla,et al. Mouse Lbx1 and human LBX1 define a novel mammalian homeo☐ gene family related to the Drosophila lady bird genes , 1995, Mechanisms of Development.
[62] W. Walthall. Repeating patterns of motoneurons in nematodes: the origin of segmentation? , 1995, EXS.
[63] Gary Ruvkun,et al. C. elegans unc-4 gene encodes a homeodomain protein that determines the pattern of synaptic input to specific motor neurons , 1992, Nature.
[64] Sean B. Carroll,et al. The segmentation and homeotic gene network in early Drosophila development , 1987, Cell.
[65] W. Bateson. Materials for the Study of Variation: Treated with Especial Regard to Discontinuity in the Origin of Species , 1894 .