Cysteine proteases of positive strand RNA viruses and chymotrypsin‐like serine proteases
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[1] V. Blinov,et al. Sobemovirus genome appears to encode a serine protease related to cysteine proteases of picornaviruses , 1988, FEBS letters.
[2] Sydney Brenner,et al. The molecular evolution of genes and proteins: a tale of two serines , 1988, Nature.
[3] J. Carrington,et al. Biochemical and mutational analysis of a plant virus polyprotein cleavage site. , 1988, The EMBO journal.
[4] E. Wimmer,et al. A poliovirus mutant defective for self-cleavage at the COOH-terminus of the 3C protease exhibits secondary processing defects. , 1988, Virology.
[5] S. Martin,et al. The complete nucleotide sequence of a bovine enterovirus. , 1988, The Journal of general virology.
[6] P. Minor,et al. The nucleotide sequence of human rhinovirus 1B: molecular relationships within the rhinovirus genus. , 1988, The Journal of general virology.
[7] R M Stroud,et al. The three-dimensional structure of Asn102 mutant of trypsin: role of Asp102 in serine protease catalysis. , 1988, Science.
[8] G. Parks,et al. Site-specific mutations at a picornavirus VP3/VP1 cleavage site disrupt in vitro processing and assembly of capsid precursors , 1987, Journal of virology.
[9] P. Kaesberg,et al. Sequence and organization of southern bean mosaic virus genomic RNA. , 1987, Virology.
[10] B. Semler,et al. Site-directed mutagenesis of proteinase 3C results in a poliovirus deficient in synthesis of viral RNA polymerase , 1987, Journal of virology.
[11] W. Rutter,et al. Selective alteration of substrate specificity by replacement of aspartic acid-189 with lysine in the binding pocket of trypsin. , 1987, Biochemistry.
[12] W. Sommergruber,et al. Evolutionary relationships within the human rhinovirus genus: comparison of serotypes 89, 2, and 14. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[13] H. Lipton,et al. Analysis of the complete nucleotide sequence of the picornavirus Theiler's murine encephalomyelitis virus indicates that it is closely related to cardioviruses , 1987, Journal of virology.
[14] A. Palmenberg. Picornaviral processing: Some new ideas , 1987, Journal of cellular biochemistry.
[15] U. Pettersson,et al. Genome of coxsackievirus B3. , 1987, Virology.
[16] R. Johnston,et al. The nucleotide sequence of the coding region of tobacco etch virus genomic RNA: evidence for the synthesis of a single polyprotein. , 1986, Virology.
[17] T. Towatari,et al. Expression and site-specific mutagenesis of the poliovirus 3C protease in Escherichia coli. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[18] Robert E. Rhoads,et al. The nucleotide sequence of tobacco vein mottling virus RNA , 1986, Nucleic Acids Res..
[19] O. Hemmer,et al. Nucleotide Sequence of Tomato Black Ring Virus RNA-1 , 1986 .
[20] B. Rosenwirth,et al. Molecular cloning and sequence determination of the genomic regions encoding protease and genome-linked protein of three picornaviruses , 1986, Journal of virology.
[21] V. Blinov,et al. Poliovirus‐encoded proteinase 3C: a possible evolutionary link between cellular serine and cysteine proteinase families , 1986, FEBS letters.
[22] R. Doolittle. Of urfs and orfs : a primer on how to analyze devised amino acid sequences , 1986 .
[23] E. Wimmer,et al. Proteolytic Processing in the Replication of Polio and Related Viruses , 1986, Bio/Technology.
[24] L. Delbaere,et al. The 1.8 A structure of the complex between chymostatin and Streptomyces griseus protease A. A model for serine protease catalytic tetrahedral intermediates. , 1985, Journal of molecular biology.
[25] S. J. Potter,et al. Primary structure and gene organization of human hepatitis A virus. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[26] W. Rutter,et al. Redesigning trypsin: alteration of substrate specificity. , 1985, Science.
[27] R. Mountford,et al. The complete nucleotide sequence of a common cold virus: human rhinovlrus 14 , 1984 .
[28] P. Argos,et al. Similarity in gene organization and homology between proteins of animal picornaviruses and a plant comovirus suggest common ancestry of these virus families. , 1984, Nucleic acids research.
[29] H. Neurath,et al. Evolution of proteolytic enzymes. , 1984, Science.
[30] M. Janda,et al. The nucleotide and deduced amino acid sequences of the encephalomyocarditis viral polyprotein coding region. , 1984, Nucleic acids research.
[31] B. Clarke,et al. The complete nucleotide sequence of the RNA coding for the primary translation product of foot and mouth disease virus. , 1984, Nucleic acids research.
[32] V. Blinov,et al. [Structural similarity of poliovirus cysteine proteinase P3-7c and cellular serine proteinase of trypsin]. , 1984, Doklady Akademii nauk SSSR.
[33] G. Lomonossoff,et al. The nucleotide sequence of cowpea mosaic virus B RNA , 1983, The EMBO journal.
[34] A. Cann,et al. The nucleotide sequence of poliovirus type 3 leon 12 a1b: comparison with poliovirus type 1. , 1983, Nucleic acids research.
[35] W. Rutter,et al. Splice junctions: association with variation in protein structure. , 1983, Science.
[36] A. Finkelstein,et al. Theory of protein secondary structure and algorithm of its prediction , 1983, Biopolymers.
[37] R. Rueckert,et al. Evidence for intramolecular self-cleavage of picornaviral replicase precursors , 1982, Journal of virology.
[38] V. Pozdnyakov,et al. Accelerated method for comparing amino acid sequences with allowance for possible gaps. Plotting optimum correspondence paths. , 2009, International journal of peptide and protein research.
[39] J. Greer. Comparative model-building of the mammalian serine proteases. , 1981, Journal of molecular biology.
[40] D. Baltimore,et al. Molecular cloning of poliovirus cDNA and determination of the complete nucleotide sequence of the viral genome. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[41] J. Richardson,et al. The anatomy and taxonomy of protein structure. , 1981, Advances in protein chemistry.
[42] M. Eigen,et al. The Hypercycle: A principle of natural self-organization , 2009 .
[43] A. Mclachlan. Gene duplications in the structural evolution of chymotrypsin. , 1979, Journal of molecular biology.
[44] H. Pelham,et al. Translation of encephalomyocarditis virus RNA in vitro yields an active proteolytic processing enzyme. , 1978, European journal of biochemistry.
[45] Finkel'shteĭn Av. Unidimensional Ising model for Polypeptide chains forming local secondary structures of various types , 1975 .
[46] D. Blow,et al. Role of a Buried Acid Group in the Mechanism of Action of Chymotrypsin , 1969, Nature.