Patterning the insect eye: From stochastic to deterministic mechanisms
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Peter F Stadler | Keith Short | Konstantin Klemm | Anita Mehta | Claude Desplan | Haleh Ebadi | Michael Perry | P. Stadler | K. Klemm | A. Mehta | C. Desplan | Haleh Ebadi | Michael W Perry | Keith Short
[1] David Jukam,et al. Rhodopsins in Drosophila Color Vision , 2008 .
[2] A. Mehta,et al. Shaking-induced crystallization of dense sphere packings. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[3] U. Wolfrum,et al. Molecular cloning of Drosophila Rh6 rhodopsin: the visual pigment of a subset of R8 photoreceptor cells 1 , 1997, FEBS letters.
[4] Esteban O. Mazzoni,et al. Stochastic spineless expression creates the retinal mosaic for colour vision , 2006, Nature.
[5] C. Desplan,et al. Molecular logic behind the three-way stochastic choices that expand butterfly colour vision , 2016, Nature.
[6] Shawn C. Little,et al. Precise Developmental Gene Expression Arises from Globally Stochastic Transcriptional Activity , 2013, Cell.
[7] S. Wolfram. Statistical mechanics of cellular automata , 1983 .
[8] A. Oudenaarden,et al. Nature, Nurture, or Chance: Stochastic Gene Expression and Its Consequences , 2008, Cell.
[9] K Kirschfeld,et al. Fluorescence of photoreceptor cells observed in vivo. , 1981, Science.
[10] Edo Kussell,et al. Interlocked Feedforward Loops Control Cell-Type-Specific Rhodopsin Expression in the Drosophila Eye , 2011, Cell.
[11] C. Desplan,et al. The evolutionary diversity of insect retinal mosaics: common design principles and emerging molecular logic. , 2015, Trends in genetics : TIG.
[12] M. Bell,et al. Two types of Drosophila R7 photoreceptor cells are arranged randomly: A model for stochastic cell‐fate determination , 2007, The Journal of comparative neurology.
[13] C. Desplan,et al. Interchromosomal Communication Coordinates Intrinsically Stochastic Expression Between Alleles , 2014, Science.
[14] C. Desplan,et al. Stochastic mechanisms of cell fate specification that yield random or robust outcomes. , 2010, Annual review of cell and developmental biology.
[15] Thomas Labhart,et al. Homothorax Switches Function of Drosophila Photoreceptors from Color to Polarized Light Sensors , 2003, Cell.
[16] Stephen Wolfram,et al. Cellular automata as models of complexity , 1984, Nature.
[17] A. Snyder. Physics of Vision in Compound Eyes , 1979 .
[18] Alistair N Boettiger,et al. Synchronous and Stochastic Patterns of Gene Activation in the Drosophila Embryo , 2009, Science.
[19] Joyce Tombran-Tink,et al. Visual transduction and non-visual light perception , 2008 .
[20] Julia Zeitlinger,et al. Paused Pol II Coordinates Tissue Morphogenesis in the Drosophila Embryo , 2013, Cell.
[21] H. Meinhardt,et al. Biological pattern formation: fmm basic mechanisms ta complex structures , 1994 .
[22] Matthew W. Pennington,et al. A dynamical model of ommatidial crystal formation , 2011, Proceedings of the National Academy of Sciences.
[23] Jean-Yves Roignant,et al. Pattern formation in the Drosophila eye disc. , 2009, The International journal of developmental biology.
[24] R. Hardie. Functional Organization of the Fly Retina , 1985 .
[25] S. Bornholdt,et al. Morphogenesis by coupled regulatory networks: reliable control of positional information and proportion regulation. , 2009, Journal of theoretical biology.
[26] Martin Heisenberg,et al. Contribution of photoreceptor subtypes to spectral wavelength preference in Drosophila , 2010, Proceedings of the National Academy of Sciences.
[27] Thomas Labhart,et al. Genetic Dissection Reveals Two Separate Retinal Substrates for Polarization Vision in Drosophila , 2012, Current Biology.
[28] Reinhard Wolf,et al. Motion vision is independent of color in Drosophila , 2008, Proceedings of the National Academy of Sciences.
[29] C. Desplan,et al. The retinal mosaics of opsin expression in invertebrates and vertebrates , 2011, Developmental neurobiology.