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ZFIN ID:
ZDB-ATB-081007-2
CITATIONS
(23 total)
Antibody Name:
Ab1-calb2
Schwarzer, S., Rekhade, D.R., Machate, A., Spieß, S., Geffarth, M., Ezhkova, D., Hans, S. (2022) Reactivation of the Neurogenic Niche in the Adult Zebrafish Statoacoustic Ganglion Following a Mechanical Lesion. Frontiers in cell and developmental biology. 10:850624
Schwarzer, S., Asokan, N., Bludau, O., Kuscha, V., Kaslin, J., Hans, S. (2020) Neurogenesis in the inner ear: the zebrafish statoacoustic ganglion provides new neurons from a Neurod/Nestin-positive progenitor pool well into adulthood. Development (Cambridge, England). 147(7):
Zhang, B.B., Yao, Y.Y., Zhang, H.F., Kawakami, K., Du, J.L. (2017) Left Habenula Mediates Light-Preference Behavior in Zebrafish via an Asymmetrical Visual Pathway. Neuron. 93(4):914-928.e4
Biechl, D., Dorigo, A., Köster, R.W., Grothe, B., Wullimann, M.F. (2016) Eppur Si Muove: Evidence for an External Granular Layer and Possibly Transit Amplification in the Teleostean Cerebellum. Frontiers in Neuroanatomy. 10:49
Soulika, M., Kaushik, A., Mathieu, B., Lourenço, R., Komisarczuk, A.Z., Romano, S.A., Jouary, A., Lardennois, A., Tissot, N., Okada, S., Abe, K., Becker, T.S., Kapsimali, M. (2016) Diversity in cell motility reveals the dynamic nature of the formation of zebrafish taste sensory organs. Development (Cambridge, England). 143(11):2012-24
Kress, S., Biechl, D., Wullimann, M.F. (2015) Combinatorial analysis of calcium-binding proteins in larval and adult zebrafish primary olfactory system identifies differential olfactory bulb glomerular projection fields. Brain structure & function. 220(4):1951-70
Braubach, O.R., Miyasaka, N., Koide, T., Yoshihara, Y., Croll, R.P., and Fine, A. (2013) Experience-Dependent versus Experience-Independent Postembryonic Development of Distinct Groups of Zebrafish Olfactory Glomeruli. The Journal of neuroscience : the official journal of the Society for Neuroscience. 33(16):6905-6916
Gutiérrez, H.C., Santos-Ledo, A., Arranz, A.V., Pradas, J.M., Noguera, J.A., and Arévalo, R.A. (2013) Effects of retinoic acid exposure during zebrafish retinogenesis. Neurotoxicology and teratology. 40:35-45
Glover, G., Mueller, K.P., Söllner, C., Neuhauss, S.C., and Nicolson, T. (2012) The Usher gene cadherin 23 is expressed in the zebrafish brain and a subset of retinal amacrine cells. Molecular Vision. 18:2309-2322
Arenzana, F.J., Santos-Ledo, A., Porteros, A., Aijón, J., Velasco, A., Lara, J.M., and Arévalo, R. (2011) Characterisation of neuronal and glial populations of the visual system during zebrafish lifespan. International journal of developmental neuroscience : the official journal of the International Society for Developmental Neuroscience. 29(4):441-449
Gayoso, J.A., Castro, A., Anadon, R., and Manso, M.J. (2011) Differential bulbar and extrabulbar projections of diverse olfactory receptor neuron populations in the adult zebrafish (Danio rerio). The Journal of comparative neurology. 519(2):247-276
Kapsimali, M., Kaushik, A.L., Gibon, G., Dirian, L., Ernest, S., and Rosa, F.M. (2011) Fgf signaling controls pharyngeal taste bud formation through miR-200 and Delta-Notch activity. Development (Cambridge, England). 138(16):3473-3484
Santos-Ledo, A., Arenzana, F.J., Porteros, A., Lara, J., Velasco, A., Aijón, J., and Arévalo, R. (2011) Cytoarchitectonic and neurochemical differentiation of the visual system in ethanol-induced cyclopic zebrafish larvae. Neurotoxicology and teratology. 33(6):686-97
Lee, A., Mathuru, A.S., Teh, C., Kibat, C., Korzh, V., Penney, T.B., and Jesuthasan, S. (2010) The habenula prevents helpless behavior in larval zebrafish. Current biology : CB. 20(24):2211-2216
Bae, Y.K., Kani, S., Shimizu, T., Tanabe, K., Nojima, H., Kimura, Y., Higashijima, S.I., and Hibi, M. (2009) Anatomy of zebrafish cerebellum and screen for mutations affecting its development. Developmental Biology. 330(2):406-426
Koide, T., Miyasaka, N., Morimoto, K., Asakawa, K., Urasaki, A., Kawakami, K., and Yoshihara, Y. (2009) Olfactory neural circuitry for attraction to amino acids revealed by transposon-mediated gene trap approach in zebrafish. Proceedings of the National Academy of Sciences of the United States of America. 106(24):9884-9889
Zannino, D.A., and Appel, B. (2009) Olig2+ precursors produce abducens motor neurons and oligodendrocytes in the zebrafish hindbrain. The Journal of neuroscience : the official journal of the Society for Neuroscience. 29(8):2322-2333
McFarland, K.A., Topczewska, J.M., Weidinger, G., Dorsky, R.I., and Appel, B. (2008) Hh and Wnt signaling regulate formation of olig2(+) neurons in the zebrafish cerebellum. Developmental Biology. 318(1):162-171
Mione, M., Baldessari, D., Deflorian, G., Nappo, G., and Santoriello, C. (2008) How neuronal migration contributes to the morphogenesis of the CNS: insights from the zebrafish. Developmental neuroscience. 30(1-3):65-81
Castro, A., Becerra, M., Manso, M.J., and Anadon, R. (2006) Calretinin immunoreactivity in the brain of the zebrafish, Danio rerio: Distribution and comparison with some neuropeptides and neurotransmitter-synthesizing enzymes. I. Olfactory organ and forebrain. The Journal of comparative neurology. 494(3):435-459
Castro, A., Becerra, M., Manso, M.J., and Anadon, R. (2006) Calretinin immunoreactivity in the brain of the zebrafish, Danio rerio: Distribution and comparison with some neuropeptides and neurotransmitter-synthesizing enzymes. II. Midbrain, hindbrain, and rostral spinal cord. The Journal of comparative neurology. 494(5):792-814
Additional Citations (2):
ZFIN Staff (2008) Antibody information from supplier. Manually curated data.
ZFIN Staff (2002) Scientific Curation. Manually curated data.
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