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XB-ANTIBODY-15887679

Attributions for Rho Ab3

Papers


Modeling Dominant and Recessive Forms of Retinitis Pigmentosa by Editing Three Rhodopsin-Encoding Genes in Xenopus Laevis Using Crispr/Cas9., Feehan JM, Chiu CN, Stanar P, Tam BM, Ahmed SN, Moritz OL., Sci Rep. July 31, 2017; 7 (1): 6920.              


Opposing Effects of Valproic Acid Treatment Mediated by Histone Deacetylase Inhibitor Activity in Four Transgenic X. laevis Models of Retinitis Pigmentosa., Vent-Schmidt RYJ, Wen RH, Zong Z, Chiu CN, Tam BM, May CG, Moritz OL., J Neurosci. January 25, 2017; 37 (4): 1039-1054.                  


The severe autosomal dominant retinitis pigmentosa rhodopsin mutant Ter349Glu mislocalizes and induces rapid rod cell death., Hollingsworth TJ, Gross AK., J Biol Chem. October 4, 2013; 288 (40): 29047-55.  


Signals governing the trafficking and mistrafficking of a ciliary GPCR, rhodopsin., Lodowski KH, Lee R, Ropelewski P, Nemet I, Tian G, Imanishi Y., J Neurosci. August 21, 2013; 33 (34): 13621-38.                      


The dependence of retinal degeneration caused by the rhodopsin P23H mutation on light exposure and vitamin a deprivation., Tam BM, Qazalbash A, Lee HC, Moritz OL., Invest Ophthalmol Vis Sci. March 1, 2010; 51 (3): 1327-34.


Photoreceptor outer segment development in Xenopus laevis: influence of the pigment epithelium., Stiemke MM, Landers RA, al-Ubaidi MR, Rayborn ME, Hollyfield JG., Dev Biol. March 1, 1994; 162 (1): 169-80.