Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 138 checked references that resolve
resolves10.1006/dbio.1996.0220Correlations between Terminal Mitosis and Differentiated Fate of Retinal Precursor Cellsin Vivoandin Vitro:Analysis with the “Window-Labeling” Technique
resolves10.1242/dev.027607Defining retinal progenitor cell competence in<i>Xenopus laevis</i>by clonal analysis
resolves10.1073/pnas.0903264106Development and diversification of retinal amacrine interneurons at single cell resolution
resolves10.1002/cne.22200Birthdays of retinal amacrine cell subtypes are systematically related to their molecular identity and soma position
resolves10.1038/328131a0A common progenitor for neurons and glia persists in rat retina late in development
resolves10.1006/dbio.1994.1346Clonal Analysis in the Chicken Retina Reveals Tangential Dispersion of Clonally Related Cells
resolves10.1242/dev.079095Establishing and maintaining gene expression patterns: insights from sensory receptor patterning
resolves10.1242/dev.059683Reconstruction of rat retinal progenitor cell lineages in vitro reveals a surprising degree of stochasticity in cell fate decisions
resolves10.1073/pnas.0608155103Notch activity permits retinal cells to progress through multiple progenitor states and acquire a stem cell property
resolves10.1242/dev.02245Notch 1 inhibits photoreceptor production in the developing mammalian retina
resolves10.1242/dev.01831Staggered cell-intrinsic timing of
<i>ath5</i>
expression underlies the wave of ganglion cell neurogenesis in the zebrafish retina
resolves10.1242/dev.126.3.555Extrinsic and intrinsic factors control the genesis of amacrine and cone cells in the rat retina
resolves10.1242/dev.121.11.3637Vertebrate retinal ganglion cells are selected from competent progenitors by the action of <i>Notch</i>
resolves10.1002/cne.21639Identification of molecular markers of bipolar cells in the murine retina
resolves10.1002/cne.21368Molecular heterogeneity of developing retinal ganglion and amacrine cells revealed through single cell gene expression profiling
resolves10.1016/j.ydbio.2012.03.006Math5 defines the ganglion cell competence state in a subpopulation of retinal progenitor cells exiting the cell cycle
resolves10.1242/dev.064006Ascl1 expression defines a subpopulation of lineage-restricted progenitors in the mammalian retina
resolves10.1073/pnas.95.3.1218Basic fibroblast growth factor induces cell migration and proliferation after glia-specific gene transfer in mice
resolves10.1016/j.ydbio.2011.03.004Conditional expression of the TVA receptor allows clonal analysis of descendents from Cre-expressing progenitor cells
resolves10.1073/pnas.1203138109Transcription factor
<i>Olig2</i>
defines subpopulations of retinal progenitor cells biased toward specific cell fates
resolves10.1016/j.ccr.2008.07.005Acquisition of Granule Neuron Precursor Identity Is a Critical Determinant of Progenitor Cell Competence to Form Shh-Induced Medulloblastoma
resolves10.1073/pnas.1303551110Cone photoreceptor types in zebrafish are generated by symmetric terminal divisions of dedicated precursors
resolves10.1073/pnas.022629799Role of a locus control region in the mutually exclusive expression of human red and green cone pigment genes
resolves10.1073/pnas.96.9.5251Mutually exclusive expression of human red and green visual pigment-reporter transgenes occurs at high frequency in murine cone photoreceptors
resolves10.1038/nature04615Stochastic spineless expression creates the retinal mosaic for colour vision
resolves10.1083/jcb.200509098Influences on neural lineage and mode of division in the zebrafish retina in vivo
resolves10.1007/BF00301829Developmental study of axon formation in the horizontal neurons of the retina of the chick embryo
resolves10.1242/dev.02566Cadherin is required for dendritic morphogenesis and synaptic terminal organization of retinal horizontal cells
resolves10.1016/j.devcel.2013.06.005Otx2 and Onecut1 Promote the Fates of Cone Photoreceptors and Horizontal Cells and Repress Rod Photoreceptors
resolves10.1210/me.2007-0037An Intron Control Region Differentially Regulates Expression of Thyroid Hormone Receptor β2 in the Cochlea, Pituitary, and Cone Photoreceptors
resolves10.1523/JNEUROSCI.0907-11.2011Retinal Ganglion Cells with Distinct Directional Preferences Differ in Molecular Identity, Structure, and Central Projections
resolves10.1073/pnas.1215806109Direction-selective retinal ganglion cells arise from molecularly specified multipotential progenitors
resolves10.1006/dbio.2002.0597Efficient Recombination in Diverse Tissues by a Tamoxifen-Inducible Form of Cre: A Tool for Temporally Regulated Gene Activation/Inactivation in the Mouse
resolves10.1002/cne.903600306Asymmetrical blastomere origin and spatial domains of dopamine and neuropeptide Y amacrine subtypes in <i>Xenopus</i> tadpole retina
resolves10.1016/j.cell.2012.10.049Embryonic Priming of a miRNA Locus Predetermines Postmitotic Neuronal Left/Right Asymmetry in C. elegans
resolves10.1242/dev.128.8.1313Roles of homeobox and &gt;bHLH genes in specification of a retinal cell type
resolves10.1016/S0896-6273(01)00407-XCoordinate Regulation of Motor Neuron Subtype Identity and Pan-Neuronal Properties by the bHLH Repressor Olig2
resolves10.1074/jbc.M400871200Requirement of Multiple Basic Helix-Loop-Helix Genes for Retinal Neuronal Subtype Specification
resolves10.1242/dev.01653bHLH-dependent and -independent modes of<i>Ath5</i>gene regulation during retinal development
resolves10.1242/dev.085886Reprogramming amacrine and photoreceptor progenitors into retinal ganglion cells by replacing <i>Neurod1</i> with <i>Atoh7</i>
resolves10.1038/83829A thyroid hormone receptor that is required for the development of green cone photoreceptors
resolves10.1038/nn.2618Pias3-dependent SUMOylation controls mammalian cone photoreceptor differentiation
resolves10.1128/MCB.01209-07Functional Roles of Otx2 Transcription Factor in Postnatal Mouse Retinal Development
resolves10.1038/nn1155Otx2 homeobox gene controls retinal photoreceptor cell fate and pineal gland development
resolves10.1073/pnas.0901484106Developmental sources of conservation and variation in the evolution of the primate eye
resolves10.1242/dev.016931Temporal control of neuronal diversity: common regulatory principles in insects and vertebrates?
resolves10.1101/gad.391106Hedgehog signaling and the retina: insights into the mechanisms controlling the proliferative properties of neural precursors
resolves10.1242/dev.126.1.23NeuroD regulates multiple functions in the developing neural retina in rodent
resolves10.1242/dev.053637Roles for Dicer1 in the patterning and differentiation of the optic cup neuroepithelium
resolves10.1167/iovs.10-6428Dicer Plays Essential Roles for Retinal Development by Regulation of Survival and Differentiation
resolves10.1016/S0092-8674(01)00465-2Drosophila Neuroblasts Sequentially Express Transcription Factors which Specify the Temporal Identity of Their Neuronal Progeny
resolves10.1101/gad.855301Requirement for <i>math5</i> in the development of retinal ganglion cells
resolves10.1242/dev.126.24.5713The development of the pattern of retinal ganglion cells in the chick retina: mechanisms that control differentiation
resolves10.1242/dev.02096Retinal ganglion cell-derived sonic hedgehog locally controls proliferation and the timing of RGC development in the embryonic mouse retina
resolves10.1186/1749-8104-4-15Cyclin D1 fine-tunes the neurogenic output of embryonic retinal progenitor cells
resolves10.1038/78774Control of Müller glial cell proliferation and activation following retinal injury
resolves10.1038/nrn2283Evolution of the vertebrate eye: opsins, photoreceptors, retina and eye cup
resolves10.1242/dev.01018Newborn horizontal cells migrate bi-directionally across the neuroepithelium during retinal development
resolves10.1523/JNEUROSCI.3109-11.2011An Essential Role for RAX Homeoprotein and NOTCH–HES Signaling in<i>Otx2</i>Expression in Embryonic Retinal Photoreceptor Cell Fate Determination
resolves10.1186/1471-2148-9-249Origin and evolution of the Notch signalling pathway: an overview from eukaryotic genomes
resolves10.1242/dev.02311Notch1 functions to suppress cone-photoreceptor fate specification in the developing mouse retina
resolves10.1186/1471-2148-7-33Origin and diversification of the basic helix-loop-helix gene family in metazoans: insights from comparative genomics
resolves10.1242/dev.090696Notch1 is required in newly postmitotic cells to inhibit the rod photoreceptor fate
The 5 references without a DOI — listed, not checked
no DOI — not checkedSidman, R. L. in The Structure of the Eye (ed. Smelser, G.) 487–506 (Academic, 1961).
no DOI — not checkedSinitsina, V. F. [DNA synthesis and cell population kinetics in embryonal histogenesis of the retina in mice]. Arkhiv. Anatomii. Gistol. Embriol. 61, 58–67 (in Russian) (1971).
no DOI — not checkedSalie, R., Niederkofler, V. & Arber, S. Patterning molecules: multitasking in the nervous system. Neuron 45, 189–192 (2005).
no DOI — not checkedYanagi, Y., Takezawa, S. & Kato, S. Distinct functions of photoreceptor cell-specific nuclear receptor, thyroid hormone receptor β2 and CRX in one photoreceptor development. Invest. Ophthalmol. Vis. Sci. 43, 3489–3494 (2002).
no DOI — not checkedArendt, D. Evolution of eyes and photoreceptor cell types. Int. J. Dev. Biol. 47, 563–571 (2003).
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