The ventral epithelium of Trichoplax adhaerens deploys in distinct patterns cells that secrete digestive enzymes, mucus or diverse neuropeptides
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[1] H. D. Pianka. CTENOPHORA , 2020, The Invertebrate Tree of Life.
[2] K. Belkhir,et al. Sponge digestive system diversity and evolution: filter feeding to carnivory , 2019, Cell and Tissue Research.
[3] G. Edgecombe,et al. Cambrian Sessile, Suspension Feeding Stem-Group Ctenophores and Evolution of the Comb Jelly Body Plan , 2019, Current Biology.
[4] Yuen Yan Wong. Deep Sequencing and Annotation of the Trichoplax adhaerens mRNA Transcriptome Identifies Novel Genes and a Rich Repertoire of Neural Signaling Machinery, Providing Insight into Nervous System Evolution , 2018 .
[5] B. Schierwater,et al. High Cell Diversity and Complex Peptidergic Signaling Underlie Placozoan Behavior , 2018, Current Biology.
[6] Manu Prakash,et al. Ultrafast epithelial contractions provide insights into contraction speed limits and tissue integrity , 2018, Proceedings of the National Academy of Sciences.
[7] I. Amit,et al. Early metazoan cell type diversity and the evolution of multicellular gene regulation , 2018, Nature Ecology & Evolution.
[8] Andrea Scrima,et al. The invasin D protein from Yersinia pseudotuberculosis selectively binds the Fab region of host antibodies and affects colonization of the intestine , 2018, The Journal of Biological Chemistry.
[9] B. Schierwater,et al. Placozoa , 2018, Current Biology.
[10] M. Aronova,et al. Cells containing aragonite crystals mediate responses to gravity in Trichoplax adhaerens (Placozoa), an animal lacking neurons and synapses , 2018, PloS one.
[11] N. King,et al. The Origin of Animal Multicellularity and Cell Differentiation. , 2017, Developmental cell.
[12] T. Reese,et al. Neuropeptidergic integration of behavior in Trichoplax adhaerens, an animal without synapses , 2017, Journal of Experimental Biology.
[13] N. King,et al. The origin of animal multicellularity and cell differentiation , 2017, bioRxiv.
[14] Patrick R. H. Steinmetz,et al. Gut-like ectodermal tissue in a sea anemone challenges germ layer homology , 2017, Mechanisms of Development.
[15] D. Richter,et al. A Large and Consistent Phylogenomic Dataset Supports Sponges as the Sister Group to All Other Animals , 2017, Current Biology.
[16] B. Rinkevich,et al. The digestive system of the stony coral Stylophora pistillata , 2017, Cell and Tissue Research.
[17] T. Reese,et al. Adherens Junctions Modulate Diffusion between Epithelial Cells in Trichoplax adhaerens , 2016, The Biological Bulletin.
[18] E. Larsson,et al. Searching the Evolutionary Origin of Epithelial Mucus Protein Components—Mucins and FCGBP , 2016, Molecular biology and evolution.
[19] F. Reimann,et al. Enteroendocrine Cells: Chemosensors in the Intestinal Epithelium. , 2016, Annual review of physiology.
[20] L. Moroz,et al. Independent origins of neurons and synapses: insights from ctenophores , 2016, Philosophical Transactions of the Royal Society B: Biological Sciences.
[21] D. Arendt,et al. Gastric pouches and the mucociliary sole: setting the stage for nervous system evolution , 2015, Philosophical Transactions of the Royal Society B: Biological Sciences.
[22] G. Jékely,et al. A serial multiplex immunogold labeling method for identifying peptidergic neurons in connectomes , 2015, bioRxiv.
[23] T. Reese,et al. Coordinated Feeding Behavior in Trichoplax, an Animal without Synapses , 2015, PloS one.
[24] Henk W. P. van den Toorn,et al. The Early Metazoan Trichoplax adhaerens Possesses a Functional O-GlcNAc System , 2015, The Journal of Biological Chemistry.
[25] M. Nikitin. Bioinformatic prediction of Trichoplax adhaerens regulatory peptides. , 2015, General and comparative endocrinology.
[26] C. Winters,et al. Novel Cell Types, Neurosecretory Cells, and Body Plan of the Early-Diverging Metazoan Trichoplax adhaerens , 2014, Current Biology.
[27] Victor V. Solovyev,et al. The Ctenophore Genome and the Evolutionary Origins of Neural Systems , 2014, Nature.
[28] N. King,et al. Prey Capture and Phagocytosis in the Choanoflagellate Salpingoeca rosetta , 2014, PloS one.
[29] D. Richter,et al. The genomic and cellular foundations of animal origins. , 2013, Annual review of genetics.
[30] M. Helmstaedter. Cellular-resolution connectomics: challenges of dense neural circuit reconstruction , 2013, Nature Methods.
[31] G. Jékely. Global view of the evolution and diversity of metazoan neuropeptide signaling , 2013, Proceedings of the National Academy of Sciences.
[32] A. Douglas,et al. Comparative digestive physiology. , 2013, Comprehensive Physiology.
[33] V. Hartenstein,et al. Stem cells and lineages of the intestine: a developmental and evolutionary perspective , 2013, Development Genes and Evolution.
[34] B. Schierwater,et al. Deep proteome profiling of Trichoplax adhaerens reveals remarkable features at the origin of metazoan multicellularity , 2013, Nature Communications.
[35] G. Jékely,et al. Antibodies against conserved amidated neuropeptide epitopes enrich the comparative neurobiology toolbox , 2012, EvoDevo.
[36] J. Mullikin,et al. The homeodomain complement of the ctenophore Mnemiopsis leidyi suggests that Ctenophora and Porifera diverged prior to the ParaHoxozoa , 2010, EvoDevo.
[37] J. Vinther,et al. A placozoan affinity for Dickinsonia and the evolution of late Proterozoic metazoan feeding modes , 2010, Evolution & development.
[38] Robert A. Bloodgood. Sensory reception is an attribute of both primary cilia and motile cilia , 2010, Journal of Cell Science.
[39] B. Schierwater,et al. Concatenated Analysis Sheds Light on Early Metazoan Evolution and Fuels a Modern “Urmetazoon” Hypothesis , 2009, PLoS biology.
[40] F. García‐Carreño,et al. Invertebrate trypsins: a review , 2008, Journal of Comparative Physiology B.
[41] Nicholas H. Putnam,et al. The genome of the choanoflagellate Monosiga brevicollis and the origin of metazoans , 2008, Nature.
[42] O. Voigt,et al. Field biology of placozoans (Trichoplax): distribution, diversity, biotic interactions. , 2007, Integrative and comparative biology.
[43] H. Clevers,et al. Identification of stem cells in small intestine and colon by marker gene Lgr5 , 2007, Nature.
[44] Rebecca Elsaesser,et al. The sense of smell, its signalling pathways, and the dichotomy of cilia and microvilli in olfactory sensory cells , 2007, BMC Neuroscience.
[45] S. Leys,et al. Feeding in a Calcareous Sponge: Particle Uptake by Pseudopodia , 2006, The Biological Bulletin.
[46] V. Hartenstein. The neuroendocrine system of invertebrates: a developmental and evolutionary perspective. , 2006, The Journal of endocrinology.
[47] Lloyd D. Fricker,et al. Neuropeptide-processing enzymes: Applications for drug discovery , 2005, The AAPS Journal.
[48] R. Wotton. The ubiquity and many roles of exopolymers (EPS) in aquatic systems , 2004 .
[49] A. Leiter,et al. The “Normal” Endocrine Cell of the Gut: Changing Concepts and New Evidences , 2004, Annals of the New York Academy of Sciences.
[50] J. Dupont,et al. Biology of insulin-like growth factors in development. , 2003, Birth defects research. Part C, Embryo today : reviews.
[51] W. Goldberg. Feeding behavior, epidermal structure and mucus cytochemistry of the scleractinian Mycetophyllia reesi, a coral without tentacles. , 2002, Tissue & cell.
[52] E. Munn,et al. Feeding and Digestion , 2002 .
[53] H. Zoghbi,et al. Requirement of Math1 for Secretory Cell Lineage Commitment in the Mouse Intestine , 2001, Science.
[54] T. Ueda,et al. Dynamic patterns in the locomotion and feeding behaviors by the placozoan Trichoplax adhaerence. , 1999, Bio Systems.
[55] D. Bumann,et al. The Ctenophore Mnemiopsis leidyi Has a Flow-Through System for Digestion with Three Consecutive Phases of Extracellular Digestion , 1997, Physiological Zoology.
[56] A. Ruthmann,et al. The Mesenchyme-Like Layer of the Fiber Cells of Trichoplax adhaerens (Placozoa), a Syncytium , 1995 .
[57] P. Schuchert. Trichoplax adhaerens (Phylum Placozoa) has Cells that React with Antibodies Against the Neuropeptide RFamide , 1993 .
[58] R. Ebberink,et al. The Insulin Family: Evolution of Structure and Function in Vertebrates and Invertebrates , 1989 .
[59] A. Ruthmann,et al. Microfilaments and microtubules in isolated fiber cells of Trichoplax adhaerens (Placozoa) , 1989, Zoomorphology.
[60] W. Sossin,et al. Cellular and molecular biology of neuropeptide processing and packaging , 1989, Neuron.
[61] D. Price,et al. Relationships between the FMRFamide-related peptides and other peptide families , 1988, Peptides.
[62] J. Conlon,et al. Insulin and other islet hormones (somatostatin, glucagon and PP) in the neuroendocrine system of some lower vertebrates and that of invertebrates--a minireview. , 1988, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme.
[63] Y. Charnay,et al. Chromatographic identification of Met- and Leu-enkephalin in the human fetal spinal cord , 1988, Peptides.
[64] A. Ruthmann,et al. The ventral epithelium of Trichoplax adhaerens (Placozoa): Cytoskeletal structures, cell contacts and endocytosis , 1986, Zoomorphology.
[65] A. Ruthmann,et al. The cytoskeleton of the fiber cells of Trichoplax adhaerens (Placozoa) , 1986, Zoomorphology.
[66] S. Tamm. Ciliary reversal without rotation of axonemal structures in ctenophore comb plates , 1981, The Journal of cell biology.
[67] G. Martin. Ciliary gliding in lower invertebrates , 1978, Zoomorphologie.
[68] D. Steiner,et al. Insulin in Invertebrates and Cyclostomes , 1973 .
[69] T. Andoh. Insulin family , 2021, Handbook of Hormones.
[70] T. Cavalier-smith. Correction to ‘Origin of animal multicellularity: precursors, causes, consequences—the choanoflagellate/sponge transition, neurogenesis and the Cambrian explosion’ , 2017, Philosophical Transactions of the Royal Society B: Biological Sciences.
[71] R. Bagby,et al. The fine structure of pinacocytes in the marine sponge Microciona prolifera (Ellis and Solander) , 2004, Zeitschrift für Zellforschung und Mikroskopische Anatomie.
[72] J. Whittingham,et al. Insulin: Sequence, Structure and Function - A Story of Surprises , 2002 .
[73] B. Schierwater,et al. Trichoplax adhaerens: Discovered as a missing link, forgotten as a hydrozoan, re-discovered as a key to metazoan evolution , 2002 .
[74] R. Petralia,et al. Immunocytochemistry of NMDA receptors. , 1999, Methods in molecular biology.
[75] E. Raikova. Occurrence and Ultrastructure of Collar Cells in the Stomach Gastrodermis of Polypodium hydriforme Ussov (Cnidaria) , 1995 .
[76] F. Harrison,et al. Placozoa, porifera, cnidaria, and ctenophora , 1991 .
[77] F. Harrison. Microscopic anatomy of invertebrates , 1991 .
[78] P. De Camilli,et al. Pathways to regulated exocytosis in neurons. , 1990, Annual review of physiology.
[79] R. Bradshaw. STRUCTURE, FUNCTION, AND EVOLUTION OF INSULIN-RELATED POLYPEPTIDES* , 1982 .
[80] M. Wells. Feeding and digestion , 1978 .
[81] J. Haynes. CHAPTER 2 – Feeding and Digestion , 1973 .
[82] S. Falkmer. Insulin production in vertebrates and invertebrates , 1972 .