Publikationen
Evolution der Farbmusterbildung bei Danio-Fischen
Zeitschriftenartikel (33)
1.
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The genome sequences of Danio albolineatus (Blyth, 1860), Danio choprai Hora, 1928, Danio jaintianensis (Sen, 2007) and Danio tinwini [Kullander & Fang], 2009. Wellcome Open Research 10, 642 (2025)
2.
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Efficient genome editing using modified Cas9 proteins in zebrafish. Biology Open 13 (4), bio060401 (2024)
3.
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kcnj13 regulates pigment cell shapes in zebrafish and has diverged by cis-regulatory evolution between Danio species. Development 150 (16), dev.201627 (2023)
4.
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Developmental genetics with model organisms. Proceedings of the National Academy of Sciences of the United States of America 119 (30), e2122148119 (2022)
5.
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M-CSFR/CSF1R signaling regulates myeloid fates in zebrafish via distinct action of its receptors and ligands. Blood Advances 6 (5), S. 1474 - 1488 (2022)
6.
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Schwann cell precursors generate sympathoadrenal system during zebrafish development. Journal of Neuroscience Research 99 (10), S. 2540 - 2557 (2021)
7.
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Author Correction: Evolution of the potassium channel gene Kcnj13 underlies colour pattern diversification in Danio fish. Nature Communications 12 (1), 3170 (2021)
8.
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Evolution of the potassium channel gene Kcnj13 underlies colour pattern diversification in Danio fish. Nature Communications 11 (1), 6230 (2020)
9.
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Galanin Signaling in the Brain Regulates Color Pattern Formation in Zebrafish. Current Biology 30 (2), S. 298 - 303 (2020)
10.
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Loss-of-function mutations in the melanocortin 1 receptor cause disruption of dorso-ventral countershading in teleost fish. Pigment Cell & Melanoma Research 32 (6), S. 817 - 828 (2019)
11.
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The identification of genes involved in the evolution of color patterns in fish. Current Opinion in Genetics & Development 57, S. 31 - 38 (2019)
12.
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The crystal structure of Staufen1 in complex with a physiological RNA sheds light on substrate selectivity. Life science alliance 1 (5), e201800187 (2018)
13.
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ALKALs are in vivo ligands for ALK family receptor tyrosine kinases in the neural crest and derived cells. Proceedings of the National Academy of Sciences of the United States of America 115 (4), S. E630 - E638 (2018)
14.
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Gain-of-function mutations in Aqp3a influence zebrafish pigment pattern formation through the tissue environment. Development 144 (11), S. 2059 - 2069 (2017)
15.
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Heterotypic interactions regulate cell shape and density during color pattern formation in zebrafish. Biology Open 5 (11), S. 1680 - 1690 (2016)
16.
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bicoid mRNA localises to the Drosophila oocyte anterior by random Dynein-mediated transport and anchoring. eLife 5, e17537 (2016)
17.
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The bicoid mRNA localization factor Exuperantia is an RNA-binding pseudonuclease. Nature Structural and Molecular Biology 23 (8), S. 705 - 713 (2016)
18.
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Pigment Cell Progenitors in Zebrafish Remain Multipotent through Metamorphosis. Developmental Cell 38 (3), S. 316 - 330 (2016)
19.
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Spermidine, but not spermine, is essential for pigment pattern formation in zebrafish. Biology Open 5 (6), S. 736 - 744 (2016)
20.
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Differentiated muscles are mandatory for gas-filling of the Drosophila airway system. Biology Open 4 (12), S. 1753 - 1761 (2015)