about
The bilaterian head patterning gene six3/6 controls aboral domain development in a cnidarianDiversity, phylogeny and expression patterns of Pou and Six homeodomain transcription factors in hydrozoan jellyfish Craspedacusta sowerbyiGastric pouches and the mucociliary sole: setting the stage for nervous system evolutionEvolution of eumetazoan nervous systems: insights from cnidariansOld cell, new trick? Cnidocytes as a model for the evolution of noveltyPunctuated emergences of genetic and phenotypic innovations in eumetazoan, bilaterian, euteleostome, and hominidae ancestorsUnderstanding the evolution and development of neurosensory transcription factors of the ear to enhance therapeutic translation.In vivo imaging of Nematostella vectensis embryogenesis and late development using fluorescent probes.Radial glial cells play a key role in echinoderm neural regenerationLoss of neurogenesis in Hydra leads to compensatory regulation of neurogenic and neurotransmission genes in epithelial cells.Distinct 3-O-sulfated heparan sulfate modification patterns are required for kal-1-dependent neurite branching in a context-dependent manner in Caenorhabditis elegans.Innexin gap junctions in nerve cells coordinate spontaneous contractile behavior in Hydra polyps.The nuclear receptors COUP-TF: a long-lasting experience in forebrain assembly.The cellular and molecular basis of cnidarian neurogenesis.Immunochemical Localization of GABAA Receptor Subunits in the Freshwater Polyp Hydra vulgaris (Cnidaria, Hydrozoa).Cell Proliferation, Migration, and Neurogenesis in the Adult Brain of the Pulse Type Weakly Electric Fish, Gymnotus omarorumPaxA, but not PaxC, is required for cnidocyte development in the sea anemone Nematostella vectensisLocalization of Neuropeptide Gene Expression in Larvae of an Echinoderm, the Starfish Asterias rubens.Ecological constraints on the origin of neurones.A "neural" enzyme in nonbilaterian animals and algae: preneural origins for peptidylglycine α-amidating monooxygenase.Functional studies on the role of Notch signaling in Hydractinia development.Neurogenesis in an early protostome relative: progenitor cells in the ventral nerve center of chaetognath hatchlings are arranged in a highly organized geometrical pattern.Magnitude Assessment of Adult Neurogenesis in the Brain Using a Flow Cytometry-Based Technique
P2860
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P2860
description
2011 nî lūn-bûn
@nan
2011 թուականի Սեպտեմբերին հրատարակուած գիտական յօդուած
@hyw
2011 թվականի սեպտեմբերին հրատարակված գիտական հոդված
@hy
2011年の論文
@ja
2011年論文
@yue
2011年論文
@zh-hant
2011年論文
@zh-hk
2011年論文
@zh-mo
2011年論文
@zh-tw
2011年论文
@wuu
name
A two-step process in the emergence of neurogenesis
@ast
A two-step process in the emergence of neurogenesis
@en
A two-step process in the emergence of neurogenesis
@en-gb
A two-step process in the emergence of neurogenesis
@nl
type
label
A two-step process in the emergence of neurogenesis
@ast
A two-step process in the emergence of neurogenesis
@en
A two-step process in the emergence of neurogenesis
@en-gb
A two-step process in the emergence of neurogenesis
@nl
prefLabel
A two-step process in the emergence of neurogenesis
@ast
A two-step process in the emergence of neurogenesis
@en
A two-step process in the emergence of neurogenesis
@en-gb
A two-step process in the emergence of neurogenesis
@nl
P2860
P1476
A two-step process in the emergence of neurogenesis
@en
P2093
Manon Quiquand
P2860
P304
P356
10.1111/J.1460-9568.2011.07829.X
P407
P577
2011-09-01T00:00:00Z