Unsaturated amino acids derived from isoleucine trigger early membrane effects on plant cells.
暂无分享,去创建一个
[1] V. Sukhov,et al. Participation of intracellular and extracellular pH changes in photosynthetic response development induced by variation potential in pumpkin seedlings , 2015, Biochemistry (Moscow).
[2] D. Siodłak. α,β-Dehydroamino acids in naturally occurring peptides , 2014, Amino Acids.
[3] V. Sukhov,et al. Ionic nature of burn-induced variation potential in wheat leaves. , 2014, Plant & cell physiology.
[4] K. Ishii,et al. Diastereoselective amidoallylation of glyoxylic acid with chiral tert-butanesulfinamide and allylboronic acid pinacol esters: efficient synthesis of optically active γ,δ-unsaturated α-amino acids , 2013 .
[5] F. Rocher,et al. Early membrane events induced by salicylic acid in motor cells of the Mimosa pudica pulvinus. , 2013, Journal of experimental botany.
[6] A. Miller,et al. Apoplast Acidification in Growing Barley (Hordeum vulgare L.) Leaves , 2013, Journal of Plant Growth Regulation.
[7] M. Dolenc,et al. Recent Advances in the Synthesis of Unnatural α-Amino Acids - an Updated Version , 2011 .
[8] James A Van Deventer,et al. Residue-specific incorporation of non-canonical amino acids into proteins: recent developments and applications. , 2010, Current opinion in chemical biology.
[9] A. Volkov,et al. Mimosa pudica: Electrical and mechanical stimulation of plant movements. , 2010, Plant, cell & environment.
[10] R. Peyronnet,et al. R-type anion channel activation is an essential step for ROS-dependent innate immune response in Arabidopsis suspension cells. , 2009, Functional plant biology : FPB.
[11] G. Roblin,et al. Early events induced by chitosan on plant cells. , 2008, Journal of experimental botany.
[12] I. Világi,et al. Mechanoreceptor Cells on the Tertiary Pulvini of Mimosa pudica L. , 2007, Plant signaling & behavior.
[13] G. Roblin,et al. Membrane effects of 2,4-dichlorophenoxyacetic acid in motor cells of Mimosa pudica L. , 2007, Plant physiology and biochemistry : PPB.
[14] Nava Moran,et al. Osmoregulation of leaf motor cells , 2007, FEBS letters.
[15] J. V. van Hest,et al. Stereoselective Incorporation of an Unsaturated Isoleucine Analogue into a Protein Expressed in E. coli , 2006, Chembiochem : a European journal of chemical biology.
[16] N. Oberlies,et al. The most widely recognized mushroom: chemistry of the genus Amanita. , 2005, Life sciences.
[17] N. Kanzawa,et al. Water channel activities of Mimosa pudica plasma membrane intrinsic proteins are regulated by direct interaction and phosphorylation , 2005, FEBS letters.
[18] P. Schultz,et al. Expanding the Genetic Code , 2003, Science.
[19] M. Hino,et al. The novel gluconeogenesis inhibitors FR225659 and related compounds that originate from Helicomyces sp. No. 19353. II. Biological profiles. , 2003, The Journal of antibiotics.
[20] M. Hino,et al. The novel gluconeogenesis inhibitors FR225659 and FR225656 from Helicomyces sp. No. 19353. III. Structure determination. , 2003, The Journal of antibiotics.
[21] Robert Huber,et al. Expansion of the genetic code enables design of a novel "gold" class of green fluorescent proteins. , 2003, Journal of molecular biology.
[22] Takahiro Hohsaka,et al. Incorporation of non-natural amino acids into proteins. , 2002, Current opinion in chemical biology.
[23] G. D. Valle,et al. Incorporation of unsaturated isoleucine analogues into proteins in vivo , 2002 .
[24] Carolyn R Bertozzi,et al. Incorporation of azides into recombinant proteins for chemoselective modification by the Staudinger ligation , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[25] E. Gomès,et al. Plasma membrane transporters: a machinery for uptake of organic solutes and stress resistance , 2001 .
[26] D. A. Dougherty,et al. Unnatural amino acids as probes of protein structure and function. , 2000, Current opinion in chemical biology.
[27] K. Soga,et al. α-Amino acids from a mushroom, Amanita castanopsidis Hongo, with growth-inhibiting activity , 1999 .
[28] L. Miginiac,et al. Réactivité d'organozinciques α-insaturés vis à vis de N-(phénylsulfanyl) iminoesters application à la synthèse d' α-aminoacides insaturés, mono- ou disubstitués , 1997 .
[29] J. Bonnemain,et al. Distribution and Activity of the Plasma Membrane H+-ATPase in Mimosa pudica L. in Relation to Ionic Fluxes and Leaf Movements , 1997, Plant physiology.
[30] S. Delrot,et al. Transcriptional and post-translational control of the plant plasma membrane H(+)-ATPase by mechanical treatments. , 1996, Biochimica et biophysica acta.
[31] C. Gaillard,et al. Effect of Cutting on Solute Uptake by Plasma Membrane Vesicles from Sugar Beet (Beta vulgaris L.) Leaves , 1993, Plant physiology.
[32] Z. C. Li,et al. DeltapH-Dependent Amino Acid Transport into Plasma Membrane Vesicles Isolated from Sugar Beet (Beta vulgaris L.) Leaves: II. Evidence for Multiple Aliphatic, Neutral Amino Acid Symports. , 1991, Plant physiology.
[33] S. Delrot,et al. Active uptake of sucrose by plant plasma membrane vesicles: determination of some important physical and energetical parameters , 1991 .
[34] P G Schultz,et al. A general method for site-specific incorporation of unnatural amino acids into proteins. , 1989, Science.
[35] S. Saeedi,et al. Effects of Respiration Inhibitors and Uncouplers on Dark- and Light-Induced Leaflet Movements of Cassia fasciculata. , 1986, Plant physiology.
[36] P. Laitinen. Involvement of an “Antizyme’ in the Inactivation of Ornithine Decarboxylase , 1985, Journal of neurochemistry.
[37] S. Saeedi,et al. Effects of Salicylic and Acetylsalicylic Acids on the Scotonastic and Photonastic Leaflet Movements of Cassia fasciculata. , 1984, Plant physiology.
[38] A. Vianello,et al. ATP-dependent and ionophore-induced proton translocation in pea stem microsomal vesicles , 1982 .
[39] Takeshi Abe. Chloride ion efflux during an action potential in the main pulvinus ofMimosa pudica , 1981, The botanical magazine = Shokubutsu-gaku-zasshi.
[40] H. Naganawa,et al. The structure of antrimycin. , 1981, The Journal of antibiotics.
[41] T Takeuchi,et al. Antrimycin, a new peptide antibiotic. , 1981, The Journal of antibiotics.
[42] S. Robinson,et al. Amino Acid transport in germinating castor bean seedlings. , 1981, Plant physiology.
[43] and R L Satter,et al. Mechanisms of Control of Leaf Movements , 1981 .
[44] M. Samejima,et al. Changes in the extracellular ion concentration in the main pulvinus of Mimosa pudica during rapid movement and recovery , 1980 .
[45] S. Fisher,et al. The effect of the convulsant allylglycine (2-amino-4-pentenoic acid) on the activity of glutamic acid decarboxylase and the concentration of GABA in different regions of guinea pig brain. , 1976, Biochemical pharmacology.
[46] R. Rando. β,γ Unsaturated amino acids as irreversible enzyme inhibitors , 1974, Nature.
[47] D. Pruess,et al. Antimetabolites produced by microorganisms. V. L-2-amino-4-methoxy-trans-3-butenoic acid. , 1972, The Journal of antibiotics.
[48] T. Yoshida,et al. A new antibiotic. Furanomycin, an isoleucine antagonist. , 1967, Journal of medicinal chemistry.
[49] W. Shive,et al. Biological specificities of 4,5-dehydro analogues of isoleucine and alloisoleucine. , 1961, The Journal of biological chemistry.
[50] J. S. Meek,et al. The Syntheses and Microbiological Properties of Acetylenic Amino Acids. Propargylglycine and 2-Amino-3-methyl-4-pentynoic Acid1 , 1954 .
[51] M. Boutry,et al. The plant plasma membrane proton pump ATPase: a highly regulated P-type ATPase with multiple physiological roles , 2008, Pflügers Archiv - European Journal of Physiology.
[52] Michael E. Hahn,et al. Manipulating proteins with chemistry: a cross-section of chemical biology. , 2005, Trends in biochemical sciences.
[53] P. Dawson,et al. Synthesis of native proteins by chemical ligation. , 2000, Annual review of biochemistry.
[54] R. Serrano. Structure and Function of Plasma Membrane ATPase , 1989 .
[55] T. Oishi,et al. Preventive Activity of N-Allylamino Acids against Fusarium Diseases and Their Mode of Action , 1980 .
[56] E. Fenster,et al. Incorporation into polypeptide and charging on transfer ribonucleic acid of the amino acid analog 5',5',5'-trifluoroleucine by leucine auxotrophs of Escherichia coli. , 1969, Biochemistry.
[57] B. Ames. ASSAY OF INORGANIC PHOSPHATE, TOTAL PHOSPHATE AND PHOSPHATASE , 1966 .