Metabolome diversity: too few genes, too many metabolites?
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[1] W. Schwab,et al. Monoterpene biosynthesis in lemon (Citrus limon). cDNA isolation and functional analysis of four monoterpene synthases. , 2002, European journal of biochemistry.
[2] C. Tesnière,et al. Molecular cloning and expression of cDNAs encoding alcohol dehydrogenases from Vitis vinifera L. during berry development. , 2000, Plant science : an international journal of experimental plant biology.
[3] F. Eisenhaber,et al. Ubiquitylation in plants: a post-genomic look at a post-translational modification. , 2001, Trends in plant science.
[4] W. Schwab,et al. Isolation, cloning and expression of a multifunctional O-methyltransferase capable of forming 2,5-dimethyl-4-methoxy-3(2H)-furanone, one of the key aroma compounds in strawberry fruits. , 2002, The Plant journal : for cell and molecular biology.
[5] J. Bohlmann,et al. Monoterpene Synthases from Grand Fir (Abies grandis) , 1997, The Journal of Biological Chemistry.
[6] J. Piatigorsky,et al. Lens crystallins: the evolution and expression of proteins for a highly specialized tissue. , 1988, Annual review of biochemistry.
[7] A. Velayos,et al. A bifunctional enzyme with lycopene cyclase and phytoene synthase activities is encoded by the carRP gene of Mucor circinelloides. , 2000, European journal of biochemistry.
[8] S. Salzberg,et al. Sequence and analysis of the Arabidopsis genome. , 2001, Current opinion in plant biology.
[9] R. M. Zablotowicz,et al. Pesticide Metabolism in Plants and Microorganisms: An Overview , 2000 .
[10] Plant enzyme structure. Explaining substrate specificity and the evolution of function. , 2001, Plant physiology.
[11] Y. Helariutta,et al. New pathway to polyketides in plants , 1998, Nature.
[12] J. Noel,et al. Characterization of phenylpropene O-methyltransferases from sweet basil: facile change of substrate specificity and convergent evolution within a plant O-methyltransferase family. , 2002, The Plant cell.
[13] Hiromi Nishida. Evolution of amino acid biosynthesis and enzymes with broad substrate specificity , 2001, Bioinform..
[14] H. Schaller,et al. Overexpression of Arabidopsis thaliana farnesyl diphosphate synthase (FPS1S) in transgenic Arabidopsis induces a cell death/senescence-like response and reduced cytokinin levels. , 2002, The Plant journal : for cell and molecular biology.
[15] Richard A. Dixon,et al. Structures of two natural product methyltransferases reveal the basis for substrate specificity in plant O-methyltransferases , 2001, Nature Structural Biology.
[16] Patrik R. Jones,et al. The UDP-glucose:p-Hydroxymandelonitrile-O-Glucosyltransferase That Catalyzes the Last Step in Synthesis of the Cyanogenic Glucoside Dhurrin in Sorghum bicolor , 1999, The Journal of Biological Chemistry.
[17] T. Kutchan,et al. Molecular cloning and functional expression of O-methyltransferases common to isoquinoline alkaloid and phenylpropanoid biosynthesis. , 1999, The Plant journal : for cell and molecular biology.
[18] S. Maury,et al. Tobacco O-methyltransferases involved in phenylpropanoid metabolism. The different caffeoyl-coenzyme A/5-hydroxyferuloyl-coenzyme A 3/5-O-methyltransferase and caffeic acid/5-hydroxyferulic acid 3/5-O-methyltransferase classes have distinct substrate specificities and expression patterns. , 1999, Plant physiology.
[19] K. Siems,et al. Arbutin synthase, a novel member of the NRD1beta glycosyltransferase family, is a unique multifunctional enzyme converting various natural products and xenobiotics. , 2002, Bioorganic & medicinal chemistry.
[20] C. Eckerskorn,et al. Molecular cloning and functional expression of a stress-induced multifunctional O-methyltransferase with pinosylvin methyltransferase activity from Scots pine (Pinus sylvestris L.) , 2000, Plant Molecular Biology.
[21] T. Kutchan,et al. Combinatorial biochemistry in plants: the case of O-methyltransferases. , 2001, Phytochemistry.
[22] K. Osakabe,et al. A novel multifunctional O-methyltransferase implicated in a dual methylation pathway associated with lignin biosynthesis in loblolly pine. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[23] Hilko van der Voet,et al. Identification of the SAAT Gene Involved in Strawberry Flavor Biogenesis by Use of DNA Microarrays , 2000, Plant Cell.
[24] P. Hedden,et al. The Gibberellin 20-Oxidase of Gibberella fujikuroi Is a Multifunctional Monooxygenase* , 2002, The Journal of Biological Chemistry.
[25] Anireddy S. N. Reddy,et al. Nuclear Pre-mRNA Splicing in Plants , 2001 .
[26] B. Henrissat,et al. A census of carbohydrate-active enzymes in the genome of Arabidopsis thaliana. , 2001 .
[27] P. Michels,et al. Evolution of glycolysis. , 1993, Progress in biophysics and molecular biology.
[28] Yi Li,et al. Higher plant glycosyltransferases , 2001, Genome Biology.
[29] D. Inzé,et al. A novel NADPH:diamide oxidoreductase activity in arabidopsis thaliana P1 zeta-crystallin. , 2000, European journal of biochemistry.
[30] S. Pflugmacher,et al. Taxonomic distribution of plant glucosyltransferases acting on XENOBIOTICS fn1 fn1Dedicated to Professor G. H. Neil Towers on the occasion of his 75th birthday. in honour of professor G. H. neil towers 75TH birthday , 1998 .
[31] D. Bowles,et al. Identification of Glucosyltransferase Genes Involved in Sinapate Metabolism and Lignin Synthesis in Arabidopsis * , 2001, The Journal of Biological Chemistry.
[32] M. Sefton,et al. The Volatile Composition of Chardonnay Juices: A Study by Flavor Precursor Analysis , 1993, American Journal of Enology and Viticulture.
[33] G. Peters,et al. The p16INK4a/CDKN2A tumor suppressor and its relatives. , 1998, Biochimica et biophysica acta.
[34] Yi Li,et al. The Activity of ArabidopsisGlycosyltransferases toward Salicylic Acid, 4-Hydroxybenzoic Acid, and Other Benzoates* , 2002, Journal of Biological Chemistry.
[35] P. Bork,et al. Functional organization of the yeast proteome by systematic analysis of protein complexes , 2002, Nature.
[36] M. Okazaki,et al. Molecular cloning and heterologous expression of novel glucosyltransferases from tobacco cultured cells that have broad substrate specificity and are induced by salicylic acid and auxin. , 2001, European journal of biochemistry.
[37] Siddhartha Roy. Multifunctional enzymes and evolution of biosynthetic pathways: Retro‐evolution by jumps , 1999, Proteins.
[38] S. Baldauf,et al. Phylogenetic Analysis of the UDP-glycosyltransferase Multigene Family of Arabidopsis thaliana * 210 , 2001, The Journal of Biological Chemistry.
[39] Peer Bork,et al. Genome and protein evolution in eukaryotes. , 2002, Current opinion in chemical biology.
[40] Enzyme active sites: bioinformatics, architecture, and mechanisms of action , 2001 .
[41] M. Wink. Plant breeding: importance of plant secondary metabolites for protection against pathogens and herbivores , 2004, Theoretical and Applied Genetics.
[42] R. Croteau,et al. Mechanism of monoterpene cyclization: stereochemical aspects of the transformation of noncyclizable substrate analogs by recombinant (-)-limonene synthase, (+)-bornyl diphosphate synthase, and (-)-pinene synthase. , 2001, Archives of biochemistry and biophysics.
[43] M. Bowman,et al. Expanding the biosynthetic repertoire of plant type III polyketide synthases by altering starter molecule specificity , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[44] G. Sandmann,et al. Isolation and functional characterisation of a novel type of carotenoid biosynthetic gene from Xanthophyllomyces dendrorhous , 1999, Molecular and General Genetics MGG.
[45] T. Ramasarma. One protein : many functions , 1994 .
[46] R. Dixon,et al. Stress responses in alfalfa (Medicago sativa L). XXII. cDNA cloning and characterization of an elicitor-inducible isoflavone 7-O-methyltransferase , 2004, Plant Molecular Biology.
[47] J. Oró,et al. On the levels of enzymatic substrate specificity: implications for the early evolution of metabolic pathways. , 1995, Advances in space research : the official journal of the Committee on Space Research.
[48] R. Croteau,et al. Monoterpene Synthases from Common Sage (Salvia officinalis)* , 1998, The Journal of Biological Chemistry.
[49] Patrick J. Williams,et al. Free and Bound Volatile Secondary Metabolites of Vitis Vhifera Grape cv. Sauvignon Blanc , 1994 .
[50] T. A. Valueva,et al. Plant Proteinase Inhibitors as Multifunctional Proteins (Review) , 2001, Applied Biochemistry and Microbiology.
[51] S. Smith‐Gill,et al. Enzyme Active Sites , 1985 .
[52] B. Halkier,et al. The biosynthesis of glucosinolates , 1997 .
[53] R. Wrobel,et al. Heterologous expression and biochemical characterization of an NAD(P)H:quinone oxidoreductase from the hemiparasitic plant Triphysaria versicolor , 2002 .
[54] W. Plaxton,et al. THE ORGANIZATION AND REGULATION OF PLANT GLYCOLYSIS. , 1996, Annual review of plant physiology and plant molecular biology.
[55] B. Alberts. The Cell as a Collection of Protein Machines: Preparing the Next Generation of Molecular Biologists , 1998, Cell.
[56] Kazuki Saito,et al. Two flavonoid glucosyltransferases from Petunia hybrida: molecular cloning, biochemical properties and developmentally regulated expression , 2002, Plant Molecular Biology.
[57] H. Mewes,et al. How can we deliver the large plant genomes? Strategies and perspectives. , 2002, Current opinion in plant biology.
[58] W. Schwab,et al. Expression of Clarkia S-linalool synthase in transgenic petunia plants results in the accumulation of S-linalyl-beta-D-glucopyranoside. , 2001, The Plant journal : for cell and molecular biology.
[59] J. Richard,et al. Kinetic parameters for the elimination reaction catalyzed by triosephosphate isomerase and an estimation of the reaction's physiological significance. , 1991, Biochemistry.
[60] A. Bruneau,et al. Plant O-methyltransferases: molecular analysis, common signature and classification , 2004, Plant Molecular Biology.
[61] R. Dixon,et al. Substrate preferences of caffeic acid/5-hydroxyferulic acid 3/5-O-methyltransferases in developing stems of alfalfa (Medicago sativa L.). , 2000, Archives of biochemistry and biophysics.
[62] E. Pichersky,et al. Identification of specific residues involved in substrate discrimination in two plant O-methyltransferases. , 1999, Archives of biochemistry and biophysics.
[63] C. Sanz,et al. Substrate Specificity of Alcohol Acyltransferase from Strawberry and Banana Fruits , 1995 .
[64] C. Joshi,et al. Conserved sequence motifs in plant S-adenosyl-L-methionine-dependent methyltransferases , 1998, Plant Molecular Biology.
[65] D. Madern. Molecular Evolution Within the L-Malate and L-Lactate Dehydrogenase Super-Family , 2002, Journal of Molecular Evolution.
[66] R. Jensen. Enzyme recruitment in evolution of new function. , 1976, Annual review of microbiology.
[67] S. Wyllie,et al. Formation of volatile branched chain esters in bananas (Musa sapientum L.). , 2000, Journal of agricultural and food chemistry.
[68] R. Dixon,et al. Plant natural products: the molecular genetic basis of biosynthetic diversity. , 1999, Current opinion in biotechnology.