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Proceedings. Biological Sciences|June 24, 2011
Spectral tuning and evolution of primate short-wavelength-sensitive visual pigmentsLivia S Carvalho, Wayne L Davies, Phyllis R Robinson, et al.Molecular Vision|December 15, 2006
Arrestin residues involved in the functional binding of arrestin to phosphorylated, photolyzed rhodopsinMaria T Ascano, W Clay Smith, Susan K Gregurick, et al.Proceedings of the National Academy of Sciences of the United States of America|June 27, 2008
Photochemistry of retinal chromophore in mouse melanopsinMarquis T Walker, R Lane Brown, Thomas W Cronin, et al.Biochemistry|June 7, 2006
Vertebrate opsins belonging to different classes vary in constitutively active properties resulting from salt-bridge mutationsBenjamin Nickle, Susan E Wilkie, Jill A Cowing, et al.Plos One|April 3, 2020
Melanopsin Carboxy-terminus phosphorylation plasticity and bulk negative charge, not strict site specificity, achieves phototransduction deactivationJuan C Valdez-Lopez, Sahil Gulati, Elelbin A Ortiz, et al.Biochemistry|November 5, 2003
Melanopsin forms a functional short-wavelength photopigmentLucy A Newman, Marquis T Walker, R Lane Brown, et al.Plos One|October 4, 2011
Unexpected diversity and photoperiod dependence of the zebrafish melanopsin systemVanessa Matos-Cruz, Joseph Blasic, Benjamin Nickle, et al.The Biochemical Journal|July 9, 2002
The molecular mechanism for the spectral shifts between vertebrate ultraviolet- and violet-sensitive cone visual pigmentsJill A Cowing, Subathra Poopalasundaram, Susan E Wilkie, et al.Biophysical Journal|November 8, 2025
RGS proteins: Potential regulators of mouse melanopsin's signaling phototransduction cascade across ipRGC subtypesLee H Harkless, K M Daly, Grayson P Ostermeyer, et al.Plos One|October 15, 2021
Spectral tuning and deactivation kinetics of marine mammal melanopsinsJeffry I Fasick, Haya Algrain, Courtland Samuels, et al.Pageof 3