The "five-sites" rule and the evolution of red and green color vision in mammals.
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[1] S. Yokoyama,et al. Cloning and expression of the red visual pigment gene of goat (Capra hircus). , 1997, Gene.
[2] J. Nathans,et al. Mechanisms of spectral tuning in the mouse green cone pigment. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[3] M. Nei,et al. Color vision of ancestral organisms of higher primates. , 1997, Molecular biology and evolution.
[4] N Okada,et al. Phylogenetic position of guinea pigs revisited. , 1997, Molecular biology and evolution.
[5] S. Yokoyama,et al. Molecular genetic basis of adaptive selection: examples from color vision in vertebrates. , 1997, Annual review of genetics.
[6] Jay Neitz,et al. Trichromatic colour vision in New World monkeys , 1996, Nature.
[7] C. Gissi,et al. The guinea-pig is not a rodent , 1996, Nature.
[8] Laurent Duret,et al. Phylogenetic position of the order Lagomorpha (rabbits, hares and allies) , 1996, Nature.
[9] G. Berkowitz,et al. Preparation of T-over-hang vectors with high PCR product cloning efficiency. , 1996, BioTechniques.
[10] M. Nei,et al. A new method of inference of ancestral nucleotide and amino acid sequences. , 1995, Genetics.
[11] J. Mollon,et al. Adaptive evolution of color vision genes in higher primates , 1995, Science.
[12] Jay Neitz,et al. Polymorphism in the number of genes encoding long-wavelength-sensitive cone pigments among males with normal color vision , 1995, Vision Research.
[13] S. Yokoyama,et al. Rhodopsin from the fish, Astyanax: role of tyrosine 261 in the red shift. , 1995, Investigative ophthalmology & visual science.
[14] K. Kuma,et al. Mammalian phylogeny inferred from multiple protein data. , 1994, Idengaku zasshi.
[15] M. Hasegawa,et al. Eutherian phylogeny as inferred from mitochondrial DNA sequence data. , 1994, Idengaku zasshi.
[16] G. H. Jacobs,et al. Spectral sensitivity, photopigments, and color vision in the guinea pig (Cavia porcellus). , 1994, Behavioral neuroscience.
[17] M. Hasegawa,et al. Phylogenetic place of guinea pigs: no support of the rodent-polyphyly hypothesis from maximum-likelihood analyses of multiple protein sequences. , 1994, Molecular biology and evolution.
[18] D. Oprian,et al. Molecular determinants of human red/green color discrimination , 1994, Neuron.
[19] G. H. Jacobs. THE DISTRIBUTION AND NATURE OF COLOUR VISION AMONG THE MAMMALS , 1993, Biological reviews of the Cambridge Philosophical Society.
[20] E. Zrenner,et al. The spectral sensitivity of dark- and light-adapted cat retinal ganglion cells , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[21] J. Nathans,et al. Cloning and expression of goldfish opsin sequences. , 1993, Biochemistry.
[22] J Nathans,et al. Absorption spectra of the hybrid pigments responsible for anomalous color vision. , 1992, Science.
[23] William R. Taylor,et al. The rapid generation of mutation data matrices from protein sequences , 1992, Comput. Appl. Biosci..
[24] T. Sakmar,et al. Introduction of hydroxyl-bearing amino acids causes bathochromic spectral shifts in rhodopsin. Amino acid substitutions responsible for red-green color pigment spectral tuning. , 1992, The Journal of biological chemistry.
[25] J. Winderickx,et al. Polymorphism in red photopigment underlies variation in colour matching , 1992, Nature.
[26] M. Novacek,et al. Mammalian phytogeny: shaking the tree , 1992, Nature.
[27] M. Novacek. Mammalian phylogeny: shaking the tree. , 1992, Nature.
[28] S. Pelletier,et al. Design, chemical synthesis, and expression of genes for the three human color vision pigments. , 1991, Biochemistry.
[29] G. H. Jacobs,et al. Retinal receptors in rodents maximally sensitive to ultraviolet light , 1991, Nature.
[30] Dan Graur,et al. Is the guinea-pig a rodent? , 1991, Nature.
[31] S. Yokoyama,et al. Convergent evolution of the red- and green-like visual pigment genes in fish, Astyanax fasciatus, and human. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[32] J Nathans,et al. Determinants of visual pigment absorbance: identification of the retinylidene Schiff's base counterion in bovine rhodopsin. , 1990, Biochemistry.
[33] J. Nathans. Determinants of visual pigment absorbance: role of charged amino acids in the putative transmembrane segments. , 1990, Biochemistry.
[34] G. H. Jacobs,et al. Analysis of fusion gene and encoded photopigment of colour-blind humans , 1989, Nature.
[35] D. Oprian,et al. Effect of carboxylic acid side chains on the absorption maximum of visual pigments. , 1989, Science.
[36] H. Khorana,et al. Glutamic acid-113 serves as the retinylidene Schiff base counterion in bovine rhodopsin. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[37] N. Saitou,et al. The neighbor-joining method: a new method for reconstructing phylogenetic trees. , 1987, Molecular biology and evolution.
[38] P. Chomczyński,et al. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. , 1987, Analytical biochemistry.
[39] J. Nathans,et al. Molecular genetics of human color vision: the genes encoding blue, green, and red pigments. , 1986, Science.
[40] J. Felsenstein. CONFIDENCE LIMITS ON PHYLOGENIES: AN APPROACH USING THE BOOTSTRAP , 1985, Evolution; international journal of organic evolution.
[41] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[42] M. O. Dayhoff,et al. 22 A Model of Evolutionary Change in Proteins , 1978 .
[43] G. Wald. The Molecular Basis of Visual Excitation , 1968, Nature.