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829, 10.1046\u002Fj.0953-816x.2001.01695.x\nLi, 2004, Islet-1 expression in the developing chicken inner ear, J Comp Neurol, 477, 1, 10.1002\u002Fcne.20190\nBrockes, 2005, Appendage regeneration in adult vertebrates and implications for regenerative medicine, Science, 310, 1919, 10.1126\u002Fscience.1115200\nHu, 2007, Inner ear hair cells produced in vitro by a mesenchymal-to-epithelial transition, Proc Natl Acad Sci U S A, 104, 16675, 10.1073\u002Fpnas.0704576104\nMa, 2008, Notch signaling regulates the extent of hair cell regeneration in the zebrafish lateral line, J Neurosci, 28, 2261, 10.1523\u002FJNEUROSCI.4372-07.2008\nHernandez, 2007, Regeneration in zebrafish lateral line neuromasts: expression of the neural progenitor cell marker sox2 and proliferation-dependent and -independent mechanisms of hair cell renewal, Dev Neurobiol, 67, 637, 10.1002\u002Fdneu.20386\nLopez-Schier, 2006, A two-step mechanism underlies the planar polarization of regenerating sensory hair cells, Proc 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165, 10.1016\u002Fj.stem.2007.05.018\nLamba, 2008, Neural regeneration and cell replacement: a view from the eye, Cell Stem Cell, 2, 538, 10.1016\u002Fj.stem.2008.05.002\nBermingham, 1999, Math1: an essential gene for the generation of inner ear hair cells, Science, 284, 1837, 10.1126\u002Fscience.284.5421.1837\nGubbels, 2008, Functional auditory hair cells produced in the mammalian cochlea by in utero gene transfer, Nature, 455, 537, 10.1038\u002Fnature07265\nIzumikawa, 2005, Auditory hair cell replacement and hearing improvement by Atoh1 gene therapy in deaf mammals, Nat Med, 11, 271, 10.1038\u002Fnm1193\nKelley, 2006, Regulation of cell fate in the sensory epithelia of the inner ear, Nat Rev Neurosci, 7, 837, 10.1038\u002Fnrn1987\nZheng, 2000, Overexpression of Math1 induces robust production of extra hair cells in postnatal rat inner ears, Nat Neurosci, 3, 580, 10.1038\u002F75753\nLanford, 1999, Notch signalling pathway mediates hair cell development in mammalian cochlea, Nat Genet, 21, 289, 10.1038\u002F6804\nZine, 2001, Hes1 and Hes5 activities are required for the normal development of the hair cells in the mammalian inner ear, J Neurosci, 21, 4712, 10.1523\u002FJNEUROSCI.21-13-04712.2001\nKiernan, 2005, The Notch ligands DLL1 and JAG2 act synergistically to regulate hair cell development in the mammalian inner ear, Development, 132, 4353, 10.1242\u002Fdev.02002\nYamamoto, 2006, Inhibition of Notch\u002FRBP-J signaling induces hair cell formation in neonate mouse cochleas, J Mol Med, 84, 37, 10.1007\u002Fs00109-005-0706-9\nJeon, 2008, Inhibition of Notch signaling increases differentiation of stem cells to hair cells through upregulation of Math1\nLi, 2005, BMP4 signaling is involved in the generation of inner ear sensory epithelia, BMC Dev Biol, 5, 16, 10.1186\u002F1471-213X-5-16\nPujades, 2006, BMP-signaling regulates the generation of hair-cells, Dev Biol, 292, 55, 10.1016\u002Fj.ydbio.2006.01.001\nDriver, 2008, Hedgehog signaling regulates sensory cell formation and auditory function in mice and humans, J Neurosci, 28, 7350, 10.1523\u002FJNEUROSCI.0312-08.2008\nStevens, 2003, Forced activation of Wnt signaling alters morphogenesis and sensory organ identity in the chicken inner ear, Dev Biol, 261, 149, 10.1016\u002FS0012-1606(03)00297-5\nChen, 1999, p27(Kip1) links cell proliferation to morphogenesis in the developing organ of Corti, Development, 126, 1581, 10.1242\u002Fdev.126.8.1581\nMantela, 2005, The retinoblastoma gene pathway regulates the postmitotic state of hair cells of the mouse inner ear, Development, 132, 2377, 10.1242\u002Fdev.01834\nSage, 2006, Essential role of retinoblastoma protein in mammalian hair cell development and hearing, Proc Natl Acad Sci U S A, 103, 7345, 10.1073\u002Fpnas.0510631103\nForge, 1993, Ultrastructural evidence for hair cell regeneration in the mammalian inner ear, Science, 259, 1616, 10.1126\u002Fscience.8456284\nWarchol, 1993, Regenerative proliferation in inner ear sensory epithelia from adult guinea pigs and humans, Science, 259, 1619, 10.1126\u002Fscience.8456285\nWhite, 2006, Mammalian cochlear supporting cells can divide and trans-differentiate into hair cells, Nature, 441, 984, 10.1038\u002Fnature04849\nHume, 2007, Expression of LHX3 and SOX2 during mouse inner ear development, Gene Expr Patterns, 7, 798, 10.1016\u002Fj.modgep.2007.05.002\nLopez, 2004, Stem\u002Fprogenitor cells in the postnatal inner ear of the GFP-nestin transgenic mouse, Int J Dev Neurosci, 22, 205, 10.1016\u002Fj.ijdevneu.2004.04.006\nSakaguchi, 2004, Spatiotemporal patterns of Musashi1 expression during inner ear development, Neuroreport, 15, 997, 10.1097\u002F00001756-200404290-00013\nStone, 2004, cProx1 immunoreactivity distinguishes progenitor cells and predicts hair cell fate during avian hair cell regeneration, Dev Dyn, 230, 597, 10.1002\u002Fdvdy.20087\nLi, 2003, Generation of hair cells by stepwise differentiation of embryonic stem cells, Proc Natl Acad Sci U S A, 100, 13495, 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10.1016\u002Fj.conb.2011.08.004\nMicheva, 2007, Array tomography: a new tool for imaging the molecular architecture and ultrastructure of neural circuits, Neuron, 55, 25, 10.1016\u002Fj.neuron.2007.06.014\nBriggman, 2006, Towards neural circuit reconstruction with volume electron microscopy techniques, Curr Opin Neurobiol, 16, 562, 10.1016\u002Fj.conb.2006.08.010\nDenk, 2004, Serial block-face scanning electron microscopy to reconstruct three-dimensional tissue nanostructure, PLoS Biol, 2, e329, 10.1371\u002Fjournal.pbio.0020329\nKnott, 2008, Serial section scanning electron microscopy of adult brain tissue using focused ion beam milling, J Neurosci, 28, 2959, 10.1523\u002FJNEUROSCI.3189-07.2008\nBourne, 2011, Nanoscale analysis of structural synaptic plasticity, Curr Opin Neurobiol, 22, 1\nKleinfeld, 2011, Large-scale automated histology in the pursuit of connectomes, J Neurosci, 31, 16125, 10.1523\u002FJNEUROSCI.4077-11.2011\nTasdizen, 2010, Automatic mosaicking and volume assembly for high-throughput serial-section transmission electron microscopy, J Neurosci Methods, 193, 132, 10.1016\u002Fj.jneumeth.2010.08.001\nMastronarde, 2005, Automated electron microscope tomography using robust prediction of specimen movements, J Struct Biol, 152, 36, 10.1016\u002Fj.jsb.2005.07.007\nAnderson, 2011, The Viking viewer: scalable multiuser annotation and summarization of large connectomics datasets, J Microsc., 241, 13, 10.1111\u002Fj.1365-2818.2010.03402.x\nBerlanga, 2011, Three-dimensional reconstruction of serial mouse brain sections: Solution for flattening high-resolution large-scale mosaics, Front Neuroanat, 5, 10.3389\u002Ffnana.2011.00017\nJeong, 2010, SSECRETT and NeuroTrace: interactive visualization and analysis tools for large-scale neuroscience datasets, IEEE Comput Graph Appl, 30, 58, 10.1109\u002FMCG.2010.56\nFiala, 2005, Reconstruct: a free editor for serial section microscopy, J Microsc, 218, 52, 10.1111\u002Fj.1365-2818.2005.01466.x\nMikula, 2007, Internet-enabled high-resolution brain mapping and virtual microscopy, Neuroimage, 35, 9, 10.1016\u002Fj.neuroimage.2006.11.053\nJurrus, 2010, Detection of neuron membranes in electron microscopy images using auto-context, Med Image Anal, 14, 770, 10.1016\u002Fj.media.2010.06.002\nNarayanaswamy, 2011, 3-D image pre-processing algorithms for improved automated tracing of neuronal arbors, Neuroinformatics, 9, 219, 10.1007\u002Fs12021-011-9116-z\nLuisi, 2011, The FARSIGHT trace editor: an open source tool for 3-D inspection and efficient pattern analysis aided editing of automated neuronal reconstructions, Neuroinformatics, 9, 305, 10.1007\u002Fs12021-011-9115-0\nAmari, 2002, Neuroinformatics: the integration of shared databases and tools towards integrative neuroscience, J Integr Neurosci, 1, 117, 10.1142\u002FS0219635202000128\nAkil, 2011, Challenges and opportunities in mining neuroscience data, Science, 331, 708, 10.1126\u002Fscience.1199305\nMartone, 2008, The cell centered database project: an update on building community resources for managing and sharing 3D imaging data, J Struct Biol, 161, 220, 10.1016\u002Fj.jsb.2007.10.003\nFamiglietti, 1975, A bistratified amacrine cell and synaptic circuitry in the inner plexiform layer of the retina, Brain Res, 84, 293, 10.1016\u002F0006-8993(75)90983-X\nTsukamoto, 2001, Microcircuits for night vision in mouse retina, J Neurosci, 21, 8616, 10.1523\u002FJNEUROSCI.21-21-08616.2001\nKamasawa, 2006, Abundance and ultrastructural diversity of neuronal gap junctions in the OFF and ON sublaminae of the inner plexiform layer of rat and mouse retina, Neuroscience, 142, 1093, 10.1016\u002Fj.neuroscience.2006.08.020\nMassey, 2008, Circuit functions of gap junctions in the mammalian retina, vol 1, 457",{"EN":227},"Building retinal 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activation of the kinase Aurora-A requires its binding partner Bora, Dev Cell, 11, 147, 10.1016\u002Fj.devcel.2006.06.002\nWang, 2007, Polo inhibits progenitor self-renewal and regulates Numb asymmetry by phosphorylating Pon, Nature, 449, 96, 10.1038\u002Fnature06056\nWang, 2006, Aurora-A acts as a tumor suppressor and regulates self-renewal of Drosophila neuroblasts, Genes Dev, 20, 3453, 10.1101\u002Fgad.1487506\nKnoblich, 1997, The N terminus of the Drosophila Numb protein directs membrane association and actin-dependent asymmetric localization, Proc Natl Acad Sci U S A, 94, 13005, 10.1073\u002Fpnas.94.24.13005\nBasto, 2008, Centrosome amplification can initiate tumorigenesis in flies, Cell, 133, 1032, 10.1016\u002Fj.cell.2008.05.039\nYamashita, 2007, Asymmetric inheritance of mother versus daughter centrosome in stem cell division, Science, 315, 518, 10.1126\u002Fscience.1134910\nYamashita, 2008, Asymmetric centrosome behavior and the mechanisms of stem cell division, J Cell Biol, 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