Regulation of temporal identity transitions in Drosophila neuroblasts.
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Bret J. Pearson | Chris Q Doe | C. Doe | B. Pearson | Bret J Pearson | Ruth Grosskortenhaus | Amanda Marusich | R. Grosskortenhaus | Amanda Marusich
[1] S. Mcconnell,et al. Cell cycle dependence of laminar determination in developing neocortex , 1991 .
[2] C. Goodman,et al. Asymmetric localization of numb autonomously determines sibling neuron identity in the Drosophila CNS. , 1995, Development.
[3] J. Wiegant,et al. A non-radioactive in situ hybridization method based on mercurated nucleic acid probes and sulfhydryl-hapten ligands. , 1986, Nucleic acids research.
[4] Ruth Lehmann,et al. The Drosophila posterior-group gene nanos functions by repressing hunchback activity , 1989, Nature.
[5] J. Nagle,et al. Regulation of POU genes by castor and hunchback establishes layered compartments in the Drosophila CNS. , 1998, Genes & development.
[6] C. Doe,et al. The tumour-suppressor genes lgl and dlg regulate basal protein targeting in Drosophila neuroblasts , 2000, Nature.
[7] J. Urban,et al. Hunchback is required for the specification of the early sublineage of neuroblast 7-3 in the Drosophila central nervous system. , 2002, Development.
[8] John M. Walker,et al. C. elegans , 2006, Methods in Molecular Biology.
[9] C. Lehner,et al. Cell fate specification by even-skipped expression in the Drosophila nervous system is coupled to cell cycle progression. , 1995, Development.
[10] M. Kirschner,et al. A major developmental transition in early xenopus embryos: I. characterization and timing of cellular changes at the midblastula stage , 1982, Cell.
[11] D. Tautz,et al. Differential regulation of target genes by different alleles of the segmentation gene hunchback in Drosophila. , 1994, Genetics.
[12] C. Cepko,et al. Two Phases of Rod Photoreceptor Differentiation during Rat Retinal Development , 1998, The Journal of Neuroscience.
[13] C. Thummel,et al. Molecular mechanisms of developmental timing in C. elegans and Drosophila. , 2001, Developmental cell.
[14] E. Carpenter,et al. Molecular Mechanisms of Development , 1999 .
[15] C. Doe,et al. Miranda directs Prospero to a daughter cell during Drosophila asymmetric divisions , 1997, Nature.
[16] C. Desplan,et al. Bicoid-independent formation of thoracic segments in Drosophila. , 2000, Science.
[17] A. Rougvie,et al. The Caenorhabditis elegans hunchback-like gene lin-57/hbl-1 controls developmental time and is regulated by microRNAs. , 2003, Developmental cell.
[18] D. Tautz,et al. A non-radioactive in situ hybridization method for the localization of specific RNAs in Drosophila embryos reveals translational control of the segmentation gene hunchback , 1989, Chromosoma.
[19] C. Doe,et al. New neuroblast markers and the origin of the aCC/pCC neurons in the Drosophila central nervous system , 1995, Mechanisms of Development.
[20] C. Doe,et al. ming is expressed in neuroblast sublineages and regulates gene expression in the Drosophila central nervous system. , 1992, Development.
[21] W. Harris,et al. Cellular competence plays a role in photoreceptor differentiation in the developing Xenopus retina. , 2001, Journal of neurobiology.
[22] M. Kirschner,et al. A major developmental transition in early xenopus embryos: II. control of the onset of transcription , 1982, Cell.
[23] C. Rickert,et al. The Embryonic Central Nervous System Lineages ofDrosophila melanogaster , 1996 .
[24] Bret J. Pearson,et al. Regulation of neuroblast competence in Drosophila , 2003, Nature.
[25] Bret J. Pearson,et al. Drosophila Neuroblasts Sequentially Express Transcription Factors which Specify the Temporal Identity of Their Neuronal Progeny , 2001, Cell.
[26] Chiara Gamberi,et al. The C elegans hunchback homolog, hbl-1, controls temporal patterning and is a probable microRNA target. , 2003, Developmental cell.
[27] C. Doe,et al. Staufen-dependent localization of prospero mRNA contributes to neuroblast daughter-cell fate , 1998, Nature.
[28] C. Rickert,et al. The embryonic central nervous system lineages of Drosophila melanogaster. II. Neuroblast lineages derived from the dorsal part of the neuroectoderm. , 1996, Developmental biology.
[29] Bret J. Pearson,et al. Specification of temporal identity in the developing nervous system. , 2004, Annual review of cell and developmental biology.
[30] C. Doe,et al. Sanpodo and Notch act in opposition to Numb to distinguish sibling neuron fates in the Drosophila CNS. , 1998, Development.
[31] N. Dillon,et al. Binding of Ikaros to the λ5 promoter silences transcription through a mechanism that does not require heterochromatin formation , 2001, The EMBO journal.
[32] C. Doe,et al. The prospero transcription factor is asymmetrically localized to the cell cortex during neuroblast mitosis in Drosophila. , 1995, Development.
[33] N. Perrimon,et al. Targeted gene expression as a means of altering cell fates and generating dominant phenotypes. , 1993, Development.
[34] M. Bate,et al. The development of Drosophila melanogaster , 1993 .
[35] H. Bellen,et al. A putative exchange factor for Rho1 GTPase is required for initiation of cytokinesis in Drosophila. , 1999, Genes & development.
[36] Volker Hartenstein,et al. The Embryonic Development of Drosophila melanogaster , 1985, Springer Berlin Heidelberg.
[37] M. Raff,et al. A cell-intrinsic timer that operates during oligodendrocyte development. , 2000, BioEssays : news and reviews in molecular, cellular and developmental biology.
[38] C. Doe,et al. Extrinsic cues, intrinsic cues and microfilaments regulate asymmetric protein localization in Drosophila neuroblasts , 1997, Current Biology.
[39] J. Kennison,et al. dMi-2, a hunchback-interacting protein that functions in polycomb repression. , 1998, Science.
[40] T. Brody,et al. Programmed transformations in neuroblast gene expression during Drosophila CNS lineage development. , 2000, Developmental biology.
[41] C. Doe,et al. The role of the cell cycle and cytokinesis in regulating neuroblast sublineage gene expression in the Drosophila CNS. , 1995, Development.
[42] S. Mcconnell,et al. Cell cycle dependence of laminar determination in developing neocortex. , 1992, Science.
[43] H. Nakagoshi,et al. Asymmetric segregation of the homeodomain protein Prospero duringDrosophila development , 1995, Nature.
[44] Hilla Peretz,et al. Ju n 20 03 Schrödinger ’ s Cat : The rules of engagement , 2003 .
[45] P. O’Farrell,et al. Genetic control of cell division patterns in the Drosophila embryo , 1989, Cell.
[46] W. Odenwald,et al. castor encodes a novel zinc finger protein required for the development of a subset of CNS neurons in drosophila , 1992, Neuron.
[47] S. Elgin,et al. Chromatin organization and transcriptional control of gene expression in Drosophila. , 2000, Gene.
[48] Martin Raff,et al. Importance of Intrinsic Mechanisms in Cell Fate Decisions in the Developing Rat Retina , 2003, Neuron.
[49] C Q Doe,et al. Clonal analysis of Drosophila embryonic neuroblasts: neural cell types, axon projections and muscle targets. , 1999, Development.
[50] W. Gehring,et al. Determination of blastoderm cells in Drosophila melanogaster. , 1971, Proceedings of the National Academy of Sciences of the United States of America.