Pamela A. Raymond

Affiliations: 
University of Michigan, Ann Arbor, Ann Arbor, MI 
Area:
Visual system, zebrafish
Google:
"Pamela Raymond"
Mean distance: 14.39 (cluster 11)
 
SNBCP
Cross-listing: MichiganTree

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Publications

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Nagashima M, Hadidjojo J, Barthel LK, et al. (2017) Anisotropic Müller glial scaffolding supports a multiplex lattice mosaic of photoreceptors in zebrafish retina. Neural Development. 12: 20
Sifuentes CJ, Kim JW, Swaroop A, et al. (2016) Rapid, Dynamic Activation of Müller Glial Stem Cell Responses in Zebrafish. Investigative Ophthalmology & Visual Science. 57: 5148-5160
Yoshimatsu T, Williams PR, D'Orazi FD, et al. (2014) Transmission from the dominant input shapes the stereotypic ratio of photoreceptor inputs onto horizontal cells. Nature Communications. 5: 3699
Raymond PA, Colvin SM, Jabeen Z, et al. (2014) Patterning the cone mosaic array in zebrafish retina requires specification of ultraviolet-sensitive cones. Plos One. 9: e85325
Lenkowski JR, Raymond PA. (2014) Müller glia: Stem cells for generation and regeneration of retinal neurons in teleost fish. Progress in Retinal and Eye Research. 40: 94-123
Nagashima M, Barthel LK, Raymond PA. (2013) A self-renewing division of zebrafish Müller glial cells generates neuronal progenitors that require N-cadherin to regenerate retinal neurons. Development (Cambridge, England). 140: 4510-21
Lenkowski JR, Qin Z, Sifuentes CJ, et al. (2013) Retinal regeneration in adult zebrafish requires regulation of TGFβ signaling. Glia. 61: 1687-97
Salbreux G, Barthel LK, Raymond PA, et al. (2012) Coupling mechanical deformations and planar cell polarity to create regular patterns in the zebrafish retina. Plos Computational Biology. 8: e1002618
Meyers JR, Hu L, Moses A, et al. (2012) β-catenin/Wnt signaling controls progenitor fate in the developing and regenerating zebrafish retina. Neural Development. 7: 30
Qin Z, Raymond PA. (2012) Microarray-based gene profiling analysis of Müller glia-derived retinal stem cells in light-damaged retinas from adult zebrafish. Methods in Molecular Biology (Clifton, N.J.). 884: 255-61
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