Ancient Origin of the Tryptophan Operon and the Dynamics of Evolutionary Change
暂无分享,去创建一个
Nemat O. Keyhani | Gary Xie | C. Bonner | G. Xie | R. Jensen | N. Keyhani | Roy A. Jensen | Carol A. Bonner
[1] J R Roth,et al. Selfish operons: horizontal transfer may drive the evolution of gene clusters. , 1996, Genetics.
[2] James R. Brown,et al. Archaea and the prokaryote-to-eukaryote transition. , 1997, Microbiology and molecular biology reviews : MMBR.
[3] C. Bonner,et al. A Probable Mixed-Function Supraoperon in Pseudomonas Exhibits Gene Organization Features of Both Intergenomic Conservation and Gene Shuffling , 1999, Journal of Molecular Evolution.
[4] J. Szustakowski,et al. Computational identification of operons in microbial genomes. , 2002, Genome research.
[5] W. D. de Vos,et al. Molecular analysis of the role of two aromatic aminotransferases and a broad-specificity aspartate aminotransferase in the aromatic amino acid metabolism of Pyrococcus furiosus. , 2002, Archaea.
[6] H. Atomi,et al. The tryptophan biosynthesis gene cluster trpCDEGFBA from Pyrococcus kodakaraensis KOD1 is regulated at the transcriptional level and expressed as a single mRNA , 1999, Molecular and General Genetics MGG.
[7] C. Yanofsky,et al. The Anti-trp RNA-binding Attenuation Protein (Anti-TRAP), AT, Recognizes the Tryptophan-activated RNA Binding Domain of the TRAP Regulatory Protein* , 2002, The Journal of Biological Chemistry.
[8] Jian Wang,et al. A complete sequence of the T. tengcongensis genome. , 2002, Genome research.
[9] Roy A Jensen,et al. The emerging periplasm-localized subclass of AroQ chorismate mutases, exemplified by those from Salmonella typhimurium and Pseudomonas aeruginosa , 2001, Genome Biology.
[10] Lothar Eggeling,et al. d-Pantothenate Synthesis inCorynebacterium glutamicum and Use of panBC and Genes Encoding l-Valine Synthesis ford-Pantothenate Overproduction , 1999, Applied and Environmental Microbiology.
[11] C. Bonner,et al. Microbial Origin of Plant-Type 2-Keto-3-Deoxy-d-arabino-Heptulosonate 7-Phosphate Synthases, Exemplified by the Chorismate- and Tryptophan-Regulated Enzyme from Xanthomonas campestris , 2001, Journal of bacteriology.
[12] J. Stülke. Control of transcription termination in bacteria by RNA-binding proteins that modulate RNA structures , 2002, Archives of Microbiology.
[13] M Wilmanns,et al. Structural conservation in parallel beta/alpha-barrel enzymes that catalyze three sequential reactions in the pathway of tryptophan biosynthesis. , 1991, Biochemistry.
[14] Evgeny Nudler,et al. Sensing Small Molecules by Nascent RNA A Mechanism to Control Transcription in Bacteria , 2002, Cell.
[15] C. Woese. Interpreting the universal phylogenetic tree. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[16] J. Thompson,et al. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. , 1994, Nucleic acids research.
[17] C. Yanofsky,et al. Transcription attenuation. , 1988, The Journal of biological chemistry.
[18] T. Henkin. Micro Review tRNA‐dircted transcription antitermination , 1994 .
[19] C. Bonner,et al. Cyclohexadienyl dehydrogenase from Pseudomonas stutzeri exemplifies a widespread type of tyrosine-pathway dehydrogenase in the TyrA protein family. , 2000, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[20] R. Jensen,et al. Substrate Ambiguity of 3-Deoxy-d-manno-Octulosonate 8-Phosphate Synthase from Neisseria gonorrhoeae in the Context of Its Membership in a Protein Family Containing a Subset of 3-Deoxy-d-arabino-Heptulosonate 7-Phosphate Synthases , 1998, Journal of bacteriology.
[21] I. Crawford,et al. The roles of indoleglycerol phosphate and the TrpI protein in the expression of trpBA from Pseudomonas aeruginosa. , 1990, Nucleic acids research.
[22] Effects of Mutations in the Pseudomonas putida miaA Gene: Regulation of the trpE andtrpGDC Operons in P. putida by Attenuation , 2001, Journal of bacteriology.
[23] C. Yanofsky,et al. A Bacillus subtilis operon containing genes of unknown function senses tRNATrp charging and regulates expression of the genes of tryptophan biosynthesis. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[24] W. Whitman,et al. Ribose biosynthesis and evidence for an alternative first step in the common aromatic amino acid pathway in Methanococcus maripaludis , 1997, Journal of bacteriology.
[25] B. Snel,et al. Conservation of gene order: a fingerprint of proteins that physically interact. , 1998, Trends in biochemical sciences.
[26] John D. Storey,et al. Precision and functional specificity in mRNA decay , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[27] Benjamin A. Shoemaker,et al. CDD: a database of conserved domain alignments with links to domain three-dimensional structure , 2002, Nucleic Acids Res..
[28] D. Pierson,et al. Documentation of Auxotrophic Mutation in Blue-Green Bacteria: Characterization of a Tryptophan Auxotroph in Agmenellum quadruplicatum , 1972, Journal of Bacteriology.
[29] P. Bork,et al. Homology among (betaalpha)(8) barrels: implications for the evolution of metabolic pathways. , 2000, Journal of molecular biology.
[30] G. F. Joyce. The antiquity of RNA-based evolution , 2002, Nature.
[31] J. Lawrence. Gene transfer, speciation, and the evolution of bacterial genomes. , 1999, Current opinion in microbiology.
[32] W. Doolittle,et al. Prokaryotic evolution in light of gene transfer. , 2002, Molecular biology and evolution.
[33] T. Henkin. tRNA-directed transcription antitermination. , 1994, Molecular microbiology.
[34] D M Burns,et al. Evolution of the tryptophan synthetase of fungi. Analysis of experimentally fused Escherichia coli tryptophan synthetase alpha and beta chains. , 1990, The Journal of biological chemistry.
[35] T. Brettin,et al. Mixed-function supraoperons that exhibit overall conservation, albeit shuffled gene organization, across wide intergenomic distances within eubacteria. , 1999, Microbial & comparative genomics.
[36] J. Vanderleyden,et al. Isolation and Characterization of the Azospirillum brasilense trpE(G) Gene, Encoding Anthranilate Synthase , 1997, Current Microbiology.
[37] O. Mayans,et al. Structural analysis of two enzymes catalysing reverse metabolic reactions implies common ancestry , 2002, The EMBO journal.
[38] U. Banik,et al. Investigation of allosteric linkages in the regulation of tryptophan synthase: the roles of salt bridges and monovalent cations probed by site-directed mutation, optical spectroscopy, and kinetics. , 2001, Biochemistry.
[39] D. Hodgson,et al. Occurrence of a putative ancient‐like isomerase involved in histidine and tryptophan biosynthesis , 2003, EMBO reports.
[40] M. Gelfand,et al. Regulation of riboflavin biosynthesis and transport genes in bacteria by transcriptional and translational attenuation. , 2002, Nucleic acids research.
[41] Raphael Gottardo,et al. Lateral gene transfer and ancient paralogy of operons containing redundant copies of tryptophan-pathway genes in Xylella species and in heterocystous cyanobacteria , 2003, Genome Biology.
[42] R. Bauerle,et al. Characterization of composite aminodeoxyisochorismate synthase and aminodeoxyisochorismate lyase activities of anthranilate synthase. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[43] R. Losick,et al. Bacillus Subtilis and Its Closest Relatives: From Genes to Cells , 2001 .
[44] R. Losick,et al. Bacillus Subtilis and Other Gram-Positive Bacteria: Biochemistry, Physiology, and Molecular Genetics , 1993 .
[45] R. Jensen. Enzyme recruitment in evolution of new function. , 1976, Annual review of microbiology.
[46] Veronika Vonstein,et al. Archaeal Shikimate Kinase, a New Member of the GHMP-Kinase Family , 2001, Journal of bacteriology.
[47] M Wilmanns,et al. Directed evolution of a (beta alpha)8-barrel enzyme to catalyze related reactions in two different metabolic pathways. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[48] A. R. Fersht,et al. retraction: Directed evolution of new catalytic activity using the α/β-barrel scaffold , 2002, Nature.
[49] P. Lio’,et al. Histidine biosynthetic pathway and genes: structure, regulation, and evolution. , 1996, Microbiological reviews.
[50] H. Mori,et al. Evolutionary instability of operon structures disclosed by sequence comparisons of complete microbial genomes. , 1999, Molecular biology and evolution.
[51] P. Gollnick. Regulation of the Bacillus subtilis trp operon by an RNA‐binding protein , 1994, Molecular microbiology.
[52] R. Bentley,et al. The shikimate pathway--a metabolic tree with many branches. , 1990, Critical reviews in biochemistry and molecular biology.
[53] L. Thomashow,et al. Phenazine Biosynthesis in Pseudomonas fluorescens: Branchpoint from the Primary Shikimate Biosynthetic Pathway and Role of Phenazine-1,6-dicarboxylic Acid , 2001 .
[54] Ali Nahvi,et al. Genetic control by a metabolite binding mRNA. , 2002, Chemistry & biology.
[55] R. Mortlock. The Evolution of Metabolic Function , 1992 .
[56] Sean R. Eddy,et al. Profile hidden Markov models , 1998, Bioinform..
[57] Alan R. Fersht,et al. Directed evolution of new catalytic activity using the α/β-barrel scaffold , 2000, Nature.
[58] H. Caldwell,et al. Molecular Basis Defining Human Chlamydia trachomatis Tissue Tropism , 2002, The Journal of Biological Chemistry.
[59] D C White,et al. Polyphasic taxonomy of the genus Shewanella and description of Shewanella oneidensis sp. nov. , 1999, International journal of systematic bacteriology.
[60] M. Kanehisa,et al. Expert system for predicting protein localization sites in gram‐negative bacteria , 1991, Proteins.
[61] Toshimichi Ikemura,et al. Codon usage tabulated from international DNA sequence databases: status for the year 2000 , 2000, Nucleic Acids Res..
[62] N. Saitou,et al. A Phylogenomic Study of the OCTase Genes in Pseudomonas syringae Pathovars: The Horizontal Transfer of the argK–tox Cluster and the Evolutionary History of OCTase Genes on Their Genomes , 2002, Journal of Molecular Evolution.
[63] J. Elf,et al. Comparison of repressor and transcriptional attenuator systems for control of amino acid biosynthetic operons. , 2001, Journal of molecular biology.
[64] A. de Saizieu,et al. The trp RNA-binding attenuation protein (TRAP) regulates the steady-state levels of transcripts of the Bacillus subtilis folate operon. , 1997, Microbiology.
[65] N. Glansdorff,et al. About the last common ancestor, the universal life‐tree and lateral gene transfer: a reappraisal , 2000, Molecular microbiology.
[66] I. Crawford,et al. The Rhizobium meliloti trpE(G) gene is regulated by attenuation, and its product, anthranilate synthase, is regulated by feedback inhibition , 1990, Journal of bacteriology.
[67] R. Jensen,et al. THE REGULATORY SIGNIFICANCE OF INTERMEDIARY METABOLITES: CONTROL OF AROMATIC ACID BIOSYNTHESIS BY FEEDBACK INHIBITION IN BACILLUS SUBTILIS. , 1965, Journal of molecular biology.
[68] Natalia N. Ivanova,et al. The genome sequence of the facultative intracellular pathogen Brucella melitensis , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[69] An-Ping Zeng,et al. Nonlinear Dynamics of Regulation of Bacterial trpOperon: Model Analysis of Integrated Effects of Repression, Feedback Inhibition, and Attenuation , 2002, Biotechnology progress.
[70] L. Vining,et al. Regulation of an anthranilate synthase gene in Streptomyces venezuelae by a trp attenuator. , 1998, Microbiology.
[71] P. Bork,et al. Homology among (βα) 8 barrels: implications for the evolution of metabolic pathways 1 1Edited by G. Von Heijne , 2000 .
[72] C. Forst,et al. Significance of two distinct types of tryptophan synthase beta chain in Bacteria, Archaea and higher plants , 2001, Genome Biology.
[73] I. Crawford,et al. Identification and characterization of genes for a second anthranilate synthase in Pseudomonas aeruginosa: interchangeability of the two anthranilate synthases and evolutionary implications , 1990, Journal of bacteriology.
[74] U. Jenal,et al. Regulation of tryptophan biosynthesis in Methanobacterium thermoautotrophicum Marburg , 1994, Journal of bacteriology.
[75] H. Meyer,et al. Multifunctional Tryptophan-synthesizing Enzyme , 1997, The Journal of Biological Chemistry.
[76] S. Ehrlich,et al. Multiple Transcriptional Control of the Lactococcus lactis trp Operon , 1998, Journal of bacteriology.
[77] T. A. Hall,et al. BIOEDIT: A USER-FRIENDLY BIOLOGICAL SEQUENCE ALIGNMENT EDITOR AND ANALYSIS PROGRAM FOR WINDOWS 95/98/ NT , 1999 .
[78] S. Kaplan,et al. Multiple chromosomes in bacteria. The yin and yang of trp gene localization in Rhodobacter sphaeroides 2.4.1. , 1999, Genetics.
[79] B L Maidak,et al. The RDP-II (Ribosomal Database Project) , 2001, Nucleic Acids Res..
[80] C. Bonner,et al. The Correct Phylogenetic Relationship of KdsA (3-Deoxy-D-manno-octulosonate 8-Phosphate Synthase) with One of Two Independently Evolved Classes of AroA (3-Deoxy-D-arabino-heptulosonate 7-Phosphate Synthase) , 2002, Journal of Molecular Evolution.
[81] J. Kane,et al. Metabolic interlock. The role of the subordinate type of enzyme in the regulation of a complex pathway. , 1971, The Journal of biological chemistry.
[82] N. J. Ryding,et al. Regulation of the Streptomyces coelicolor Calcium-Dependent Antibiotic by absA, Encoding a Cluster-Linked Two-Component System , 2002, Journal of bacteriology.
[83] Chi-Yung Lai,et al. Amplification of trpEG: adaptation of Buchnera aphidicola to an endosymbiotic association with aphids. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[84] G. Gussin,et al. Nucleotide sequences of the trpI, trpB, and trpA genes of Pseudomonas syringae: positive control unique to fluorescent pseudomonads. , 1993, Gene.
[85] C. Yanofsky. Advancing our knowledge in biochemistry, genetics, and microbiology through studies on tryptophan metabolism. , 2001, Annual review of biochemistry.
[86] W. Gu,et al. Evolutionary recruitment of biochemically specialized subdivisions of Family I within the protein superfamily of aminotransferases , 1996, Journal of bacteriology.
[87] A. Hughes,et al. Pattern and timing of gene duplication in animal genomes. , 2001, Genome research.
[88] L. Thomashow,et al. Phenazine biosynthesis in Pseudomonas fluorescens: branchpoint from the primary shikimate biosynthetic pathway and role of phenazine-1,6-dicarboxylic acid. , 2001, Journal of the American Chemical Society.
[89] C. Bonner,et al. Dynamic diversity of the tryptophan pathway in chlamydiae: reductive evolution and a novel operon for tryptophan recapture , 2002, Genome Biology.
[90] J. Kane,et al. Metabolic interlock. The dual function of a folate pathway gene as an extra-operonic gene of tryptophan biosynthesis. , 1972, The Journal of biological chemistry.
[91] C. Yanofsky,et al. Regulation by Termination-Antitermination: a Genomic Approach , 2002 .
[92] L. Thomashow,et al. Functional Analysis of Genes for Biosynthesis of Pyocyanin and Phenazine-1-Carboxamide from Pseudomonas aeruginosa PAO1 , 2001, Journal of bacteriology.
[93] S. Nordeen,et al. DNA Intersegment Transfer, How Steroid Receptors Search for A Target Site* , 1997, The Journal of Biological Chemistry.
[94] R. Jensen,et al. Nested gene fusions as markers of phylogenetic branchpoints in prokaryotes. , 1990, Trends in ecology & evolution.
[95] C. Yanofsky. Using Studies on Tryptophan Metabolism to Answer Basic Biological Questions , 2003, The Journal of Biological Chemistry.
[96] N. Glansdorff,et al. The Evolutionary History of Carbamoyltransferases: A Complex Set of Paralogous Genes Was Already Present in the Last Universal Common Ancestor , 1999, Journal of Molecular Evolution.
[97] B. Nichols,et al. Cloning and sequencing of Escherichia coli ubiC and purification of chorismate lyase , 1992, Journal of bacteriology.