Complementary advantageous substitutions in the evolution of an antiviral RNase of higher primates
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[1] H. Rosenberg,et al. Eosinophils, eosinophil ribonucleases, and their role in host defense against respiratory virus pathogens , 2001, Journal of leukocyte biology.
[2] K. Dyer,et al. Gene structure and enzymatic activity of mouse eosinophil-associated ribonuclease 2. , 2001, Gene.
[3] Edward C. Holmes,et al. Variable Immune-Driven Natural Selection in the Attachment (G) Glycoprotein of Respiratory Syncytial Virus (RSV) , 2001, Journal of Molecular Evolution.
[4] J. Zhang,et al. Sequence variation at two eosinophil-associated ribonuclease loci in humans. , 2000, Genetics.
[5] M. Lynch,et al. The evolutionary fate and consequences of duplicate genes. , 2000, Science.
[6] R. DeSalle,et al. Adaptive Evolution of Genes and Genomes , 2000, Heredity.
[7] R. Shamir,et al. A fast algorithm for joint reconstruction of ancestral amino acid sequences. , 2000, Molecular biology and evolution.
[8] Jianzhi Zhang,et al. Evolution of the rodent eosinophil-associated RNase gene family by rapid gene sorting and positive selection. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[9] T. Jukes,et al. The neutral theory of molecular evolution. , 2000, Genetics.
[10] M. Saraste,et al. FEBS Lett , 2000 .
[11] Jianzhi Zhang,et al. Rapid Evolution of the Ribonuclease A Superfamily: Adaptive Expansion of Independent Gene Clusters in Rats and Mice , 1999, Journal of Molecular Evolution.
[12] M. Pagel. The Maximum Likelihood Approach to Reconstructing Ancestral Character States of Discrete Characters on Phylogenies , 1999 .
[13] S. Lee-Huang,et al. Lysozyme and RNases as anti-HIV components in beta-core preparations of human chorionic gonadotropin. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[14] M. Gouy,et al. A nonhyperthermophilic common ancestor to extant life forms. , 1999, Science.
[15] K. Dyer,et al. Evolution of antiviral activity in the ribonuclease A gene superfamily: evidence for a specific interaction between eosinophil-derived neurotoxin (EDN/RNase 2) and respiratory syncytial virus. , 1998, Nucleic acids research.
[16] R. Quatrano. Genomics , 1998, Plant Cell.
[17] C. Bonville,et al. Overnight titration of human respiratory syncytial virus using quantitative shell vial amplification. , 1998, BioTechniques.
[18] K. Dyer,et al. Eosinophil cationic protein/RNase 3 is another RNase A-family ribonuclease with direct antiviral activity. , 1998, Nucleic acids research.
[19] C. Groves,et al. Toward a phylogenetic classification of Primates based on DNA evidence complemented by fossil evidence. , 1998, Molecular phylogenetics and evolution.
[20] K. Dyer,et al. Recombinant human eosinophil-derived neurotoxin/RNase 2 functions as an effective antiviral agent against respiratory syncytial virus. , 1998, The Journal of infectious diseases.
[21] A. Dean,et al. The structural basis of molecular adaptation. , 1998, Molecular biology and evolution.
[22] M. Nei,et al. Positive Darwinian selection after gene duplication in primate ribonuclease genes. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[23] K. Dyer,et al. Diversity among the primate eosinophil-derived neurotoxin genes: a specific C-terminal sequence is necessary for enhanced ribonuclease activity. , 1997, Nucleic acids research.
[24] G. D'alessio,et al. Ribonucleases : structures and functions , 1997 .
[25] N. Guex,et al. SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modeling , 1997, Electrophoresis.
[26] E. Olson,et al. Two highly homologous ribonuclease genes expressed in mouse eosinophils identify a larger subgroup of the mammalian ribonuclease superfamily. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[27] D. Newton,et al. X-ray crystallographic structure of recombinant eosinophil-derived neurotoxin at 1.83 A resolution. , 1996, Journal of molecular biology.
[28] S. Karnik,et al. Angiotensin II-Forming Activity in a Reconstructed Ancestral Chymase , 1996, Science.
[29] M. Nei,et al. A new method of inference of ancestral nucleotide and amino acid sequences. , 1995, Genetics.
[30] K. Dyer,et al. Eosinophil Cationic Protein and Eosinophil-derived Neurotoxin , 1995, Journal of Biological Chemistry.
[31] Dolph Schluter,et al. Uncertainty in ancient phylogenies , 1995, Nature.
[32] R A Sayle,et al. RASMOL: biomolecular graphics for all. , 1995, Trends in biochemical sciences.
[33] K. Dyer,et al. Rapid evolution of a unique family of primate ribonuclease genes , 1995, Nature Genetics.
[34] Steven A. Benner,et al. Reconstructing the evolutionary history of the artiodactyl ribonuclease superfamily , 1995, Nature.
[35] William R. Taylor,et al. The rapid generation of mutation data matrices from protein sequences , 1992, Comput. Appl. Biosci..
[36] D. Labie,et al. Molecular Evolution , 1991, Nature.
[37] M. Heise,et al. Structure and chromosome localization of the human eosinophil-derived neurotoxin and eosinophil cationic protein genes: evidence for intronless coding sequences in the ribonuclease gene superfamily. , 1990, Genomics.
[38] J. Beintema. Presence of a basic amino acid residue at either position 66 or 122 is a condition for enzymic activity in the ribonuclease superfamily , 1989, FEBS letters.
[39] T. Ganz,et al. Antibacterial properties of eosinophil major basic protein and eosinophil cationic protein. , 1989, Journal of immunology.
[40] J. Tavernier,et al. Killing of Plasmodium falciparum by eosinophil secretory products , 1987, Infection and immunity.
[41] D. Loegering,et al. Ribonuclease activity associated with human eosinophil-derived neurotoxin and eosinophil cationic protein. , 1986, Journal of immunology.
[42] P. Venge,et al. Mechanism of membrane damage mediated by human eosinophil cationic protein , 1986, Nature.
[43] T. Gojobori,et al. Rapid evolution of goat and sheep globin genes following gene duplication. , 1983, Molecular biology and evolution.
[44] W R Engels,et al. Gene duplication. , 1981, Science.
[45] D. Hartl,et al. Principles of population genetics , 1981 .
[46] D. Hartl,et al. Selective neutrality of 6PGD allozymes in E. coli and the effects of genetic background. , 1980, Genetics.
[47] B. Bainbridge,et al. Genetics , 1981, Experientia.
[48] S. Ohno,et al. Ancient Linkage Groups and Frozen Accidents , 1973, Nature.
[49] W. Fitch. Toward Defining the Course of Evolution: Minimum Change for a Specific Tree Topology , 1971 .
[50] Dr. Susumu Ohno. Evolution by Gene Duplication , 1970, Springer Berlin Heidelberg.
[51] R. W. C. Stevens,et al. Sex chromosomes and sex-linked genes. , 1968 .
[52] Dr. Susumu Ohno. Sex Chromosomes and Sex-Linked Genes , 1967, Monographs on Endocrinology.
[53] S. G. Stephens. Possible Significance of Duplication in Evolution , 1951 .