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N Use By Plants
Nitrate Assimilation
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Glu, Gln, Asn, Gly, Ser
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Asp, Ala, GABA
Val, Leu, Ileu, Thr, Lys
Pro, Arg, Orn
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HORT640 - Metabolic Plant Physiology

References, trehalose

Aeschbacher RA, Muller J, Boller T, Wiemken A. Purification of the trehalase GMTRE1 from soybean nodules and cloning of its cDNA. GMTRE1 is expressed at a low level in multiple tissues. Plant Physiol. 119: 489-496 (1999).

Alkharouf NW, Klink VP, Chouikha IB, Beard HS, Macdonald MH, Meyer S, Knap HT, Khan R, Matthews BF. Timecourse microarray analyses reveal global changes in gene expression of susceptible Glycine max (soybean) roots during infection by Heterodera glycines (soybean cyst nematode). Planta 224: 838-852 (2006).

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Asha H, Gowrishankar J. Regulation of kdp operon expression in Escherichia coli: evidence against turgor as signal for transcriptional control. J. Bacteriol. 175: 4528-4537 (1993).

Asthana RK, Srivastava S, Singh AP, Kayastha AM, Singh SP. Identification of maltooligosyltrehalose synthase and maltooligosyltrehalose trehalohydrolase enzymes catalysing trehalose biosynthesis in Anabaena 7120 exposed to NaCl stress. J. Plant Physiol. 162: 1030-1037 (2005).

Avonce N, Leyman B, Mascorro-Gallardo JO, Van Dijck P, Thevelein JM, Iturriaga G. The Arabidopsis trehalose-6-P synthase AtTPS1 gene is a regulator of glucose, abscisic acid, and stress signaling. Plant Physiol. 136: 3649-3659 (2004).

Avonce N, Leyman B, Thevelein J, Iturriaga G. Trehalose metabolism and glucose sensing in plants. Biochem. Soc. Trans. 33: 276-279 (2005).

Bae HH, Herman E, Bailey B, Bae HJ, Sicher R. Exogenous trehalose alters Arabidopsis transcripts involved in cell wall modification, abiotic stress, nitrogen metabolism, and plant defense. Physiol. Plant. 125: 114-126 (2005).

Bago B, Pfeffer PE, Abubaker J, Jun J, Allen JW, Brouillette J, Douds DD, Lammers PJ, Shachar-Hill Y. Carbon export from arbuscular mycorrhizal roots involves the translocation of carbohydrate as well as lipid. Plant Physiol. 131: 1496-1507 (2003).

Bago B, Pfeffer PE, Douds Jr DD, Brouillette J, Becard G, Shachar-Hill Y. Carbon metabolism in spores of the arbuscular mycorrhizal fungus Glomus intraradices as revealed by nuclear magnetic resonance spectroscopy. Plant Physiol. 121: 263-272 (1999).

Barra L, Pica N, Gouffi K, Walker GC, Blanco C, Trautwetter A. Glucose 6-phosphate dehydrogenase is required for sucrose and trehalose to be efficient osmoprotectants in Sinorhizobium meliloti. FEMS Microbiol. Lett. 229: 183-188 (2003).

Baud S, Graham IA. A spatiotemporal analysis of enzymatic activities associated with carbon metabolism in wild-type and mutant embryos of Arabidopsis using in situ histochemistry. Plant J. 46: 155-169 (2006).

Behm CA. The role of trehalose in the physiology of nematodes. Int. J. Parasitol. 27: 215-229 (1997).

Blomberg A. Metabolic surprises in Saccharomyces cerevisiae during adaptation to saline conditions: questions, some answers and a model. FEMS Microbiol. Lett. 182: 1-8 (2000).

Bonaterra A, Camps J, Montesinos E. Osmotically induced trehalose and glycine betaine accumulation improves tolerance to desiccation, survival and efficacy of the postharvest biocontrol agent Pantoea agglomerans EPS125. FEMS Microbiol. Lett. 250: 1-8 (2005).

Boos W, Ehmann U, Forkl H, Klein W, Rimmele M, Postma P. Trehalose transport and metabolism in Escherichia coli. J. Bacteriol. 172: 3450-3461 (1990).

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Brenner WG, Romanov GA, Kollmer I, Burkle L, Schmulling T. Immediate-early and delayed cytokinin response genes of Arabidopsis thaliana identified by genome-wide expression profiling reveal novel cytokinin-sensitive processes and suggest cytokinin action through transcriptional cascades. Plant J. 44: 314-333 (2005).

Carpenter JF, Martin B, Crowe LM, Crowe JH. Stabilization of phosphofructokinase during air-drying with sugars and sugar/transition metal mixtures. Cryobiology 24: 455-464 (1987).

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Cayley S, Record MT. Roles of cytoplasmic osmolytes, water, and crowding in the response of Escherichia coli to osmotic stress: biophysical basis of osmoprotection by glycine betaine. Biochemistry 42: 12596-12609 (2003).

Chen L, Ferreira JA, Costa SM, Cabrita GJ, Otzen DE, Melo EP. Compaction of ribosomal protein S6 by sucrose occurs only under native conditions. Biochemistry 45: 2189-2199 (2006).

Chen TH, Murata N. Enhancement of tolerance of abiotic stress by metabolic engineering of betaines and other compatible solutes. Curr. Opin. Plant Biol. 5: 250-257 (2002).

Cleland D, Krader P, McCree C, Tang J, Emerson D. Glycine betaine as a cryoprotectant for prokaryotes. J. Microbiol. Methods 58: 31-38 (2004).

Costantino HR, Curley JG, Hsu CC. Determining the water sorption monolayer of lyophilized pharmaceutical proteins. J. Pharm. Sci. 86: 1390-1393 (1997).

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D'Alfonso L, Collini M, Baldini G. Trehalose influence on beta-lactoglobulin stability and hydration by time resolved fluorescence. Eur. J. Biochem. 270: 2497-2504 (2003).

D'Souza-Ault MR, Smith LT, Smith GM. Roles of N-acetylglutaminylglutamine amide and glycine betaine in adaptation of Pseudomonas aeruginosa to osmotic stress. Appl. Environ. Microbiol. 59: 473-478 (1993).

Desmarais D, Jablonski PE, Fedarko NS, Roberts MF. 2-Sulfotrehalose, a novel osmolyte in haloalkaliphilic archaea. J. Bacteriol. 179: 3146-3153 (1997).

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Diab F, Bernard T, Bazire A, Haras D, Blanco C, Jebbar M. Succinate-mediated catabolite repression control on the production of glycine betaine catabolic enzymes in Pseudomonas aeruginosa PAO1 under low and elevated salinities. Microbiology 152: 1395-1406 (2006).

Diamant S, Eliahu N, Rosenthal D, Goloubinoff P. Chemical chaperones regulate molecular chaperones in vitro and in cells under combined salt and heat stresses. J. Biol. Chem. 276: 39586-39591 (2001).

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Dijken AJ, Schluepmann H, Smeekens SC. Arabidopsis trehalose-6-phosphate synthase 1 is essential for normal vegetative growth and transition to flowering. Plant Physiol. 135: 969-977 (2004).

Diniz-Mendes L, Bernardes E, de Araujo PS, Panek AD, Paschoalin VM. Preservation of frozen yeast cells by trehalose. Biotechnol. Bioeng. 65: 572-578 (1999).

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Eastmond PJ, Li Y, Graham IA. Is trehalose-6-phosphate a regulator of sugar metabolism in plants? J. Exp. Bot. 54: 533-537 (2003).

Eastmond PJ, van Dijken AJ, Spielman M, Kerr A, Tissier AF, Dickinson HG, Jones JD, Smeekens SC, Graham IA. Trehalose-6-phosphate synthase 1, which catalyses the first step in trehalose synthesis, is essential for Arabidopsis embryo maturation. Plant J. 29: 225-235 (2002).

Eis C, Nidetzky B. Characterization of trehalose phosphorylase from Schizophyllum commune. Biochem. J. 341: 385-393 (1999).

Felton GW, Summers CB. Antioxidant systems in insects. Arch. Insect Biochem. Physiol. 29: 187-197 (1995).

Francis D, Halford NG. Nutrient sensing in plant meristems. Plant Mol. Biol. 60: 981-993 (2006).

Franco OL, Melo FR. Osmoprotectants - A plant strategy in response to osmotic stress. Russ. J. Plant Physiol. 47: 137-144 (2000).

Frison M, Parrou JL, Guillaumot D, Masquelier D, Francois J, Chaumont F, Batoko H. The Arabidopsis thaliana trehalase is a plasma membrane-bound enzyme with extracellular activity. FEBS Lett. 581: 4010-4016 (2007).

Fritzius T, Aeschbacher R, Wiemken A, Wingler A. Induction of ApL3 expression by trehalose complements the starch-deficient Arabidopsis mutant adg2-1 lacking ApL1, the large subunit of ADP-glucose pyrophosphorylase. Plant Physiol. 126: 883-889 (2001).

Gadd GM, Chalmers K, Reed RH. The role of trehalose in dehydration resistance of Saccharomyces cerevisiae. FEMS Microbiol. Lett. 48: 249-254 (1987).

Galinksi EA. Compatible solutes of halophilic eubacteria - molecular principles, water-solute interaction, stress protection. Experientia 49: 487-496 (1993).

Garg AK, Kim JK, Owens TG, Ranwala AP, Choi YD, Kochian LV, Wu RJ. Trehalose accumulation in rice plants confers high tolerance levels to different abiotic stresses. Proc. Natl. Acad. Sci. U.S.A. 99: 15898-15903 (2002).

Giaever HM, Styrvold OB, Kaasen I, Strom AR. Biochemical and genetic characterization of osmoregulatory trehalose synthesis in Escherichia coli. J. Bacteriol. 170: 2841-2849 (1988).

Goddijn O, Smeekens S. Sensing trehalose biosynthesis in plants. Plant J. 14: 143-146 (1998).

Goddijn OJ, Verwoerd TC, Voogd E, Krutwagen RW, de Graaf PT, van Dun K, Poels J, Ponstein AS, Damm B, Pen J. Inhibition of trehalase activity enhances trehalose accumulation in transgenic plants. Plant Physiol. 113: 181-190 (1997).

Goddijn OJM, van Dun K. Trehalose metabolism in plants. Trends Plant Sci. 4: 315-319 (1999).

Gomez LD, Baud S, Gilday A, Li Y, Graham IA. Delayed embryo development in the ARABIDOPSIS TREHALOSE-6-PHOSPHATE SYNTHASE 1 mutant is associated with altered cell wall structure, decreased cell division and starch accumulation. Plant J. 46: 69-84 (2006).

Goude R, Renaud S, Bonnassie S, Bernard T, Blanco C. Glutamine, glutamate, and alpha-glucosylglycerate are the major osmotic solutes accumulated by Erwinia chrysanthemi strain 3937. Appl. Environ. Microbiol. 70: 6535-6541 (2004).

Gouffi K, Pica N, Pichereau V, Blanco C. Disaccharides as a new class of nonaccumulated osmoprotectants for Sinorhizobium meliloti. Appl. Environ. Microbiol. 65: 1491-1500 (1999).

Goyal K, Walton LJ, Tunnacliffe A. LEA proteins prevent protein aggregation due to water stress. Biochem. J. 388: 151-157 (2005).

Grennan AK. The role of trehalose biosynthesis in plants. Plant Physiol. 144: 3-5 (2007).

Guo N, Puhlev I, Brown DR, Mansbridge J, Levine F. Trehalose expression confers desiccation tolerance on human cells. Nat. Biotechnol. 18: 168-171 (2000).

Guyot S, Ferret E, Gervais P. Responses of Saccharomyces cerevisiae to thermal stress. Biotechnol. Bioeng. 92: 403-409 (2005).

Habibur Rahman Pramanik M, Imai R. Functional identification of a trehalose 6-phosphate phosphatase gene that is involved in transient induction of trehalose biosynthesis during chilling stress in rice. Plant Mol. Biol. 58: 751-762 (2005).

Halford NG, Paul MJ. Carbon metabolite sensing and signalling. Plant Biotechnol. J. 1: 381-398 (2003).

Halford NG, Paul MJ. Carbon metabolite sensing and signalling. Plant Biotechnol. J. 1: 381-398 (2003).

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Hare PD, Cress WA, Van Staden J. Dissecting the roles of osmolyte accumulation during stress. Plant Cell Environ. 21: 535-553 (1998).

Harthill JE, Meek SE, Morrice N, Peggie MW, Borch J, Wong BH, Mackintosh C. Phosphorylation and 14-3-3 binding of Arabidopsis trehalose-phosphate synthase 5 in response to 2-deoxyglucose. Plant J. 47: 211-223 (2006).

He J, Jiang JD, Jia KZ, Huang X, Li SP. Glycine betaine supplied exogenously enhance salinity tolerance of Pseudomonas putida DLL-1. Wei Sheng Wu Xue Bao 46: 154-157 (2006).

Helfert C, Gotsche S, Dahl MK. Cleavage of trehalose-phosphate in Bacillus subtilis is catalysed by a phospho-alpha-(1-1)-glucosidase encoded by the treA gene. Mol. Microbiol. 16: 111-120 (1995).

Hengherr S, Heyer AG, Kohler HR, Schill RO. Trehalose and anhydrobiosis in tardigrades - evidence for divergence in responses to dehydration. FEBS J. 275: 281-288 (2008).

Hincha DK. High concentrations of the compatible solute glycinebetaine destabilize model membranes under stress conditions. Cryobiology 53: 58-68 (2006).

Horlacher R, Boos W. Characterization of TreR, the major regulator of the Escherichia coli trehalose system. J. Biol. Chem. 272: 13026-13032 (1997).

Horlacher R, Peist R, Boos W. Improved method for the preparative synthesis of labeled trehalose of high specific activity by Escherichia coli. Appl. Environ. Microbiol. 62: 3861-3863 (1996).

Horlacher R, Uhland K, Klein W, Ehrmann M, Boos W. Characterization of a cytoplasmic trehalase of Escherichia coli. J. Bacteriol. 178: 6250-6257 (1996).

Hottiger T, De Virgilio C, Hall MN, Boller T, Wiemken A. The role of trehalose synthesis for the acquisition of thermotolerance in yeast. II. Physiological concentrations of trehalose increase the thermal stability of proteins in vitro. Eur. J. Biochem. 219: 187-193 (1994).

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Jang IC, Oh SJ, Seo JS, Choi WB, Song SI, Kim CH, Kim YS, Seo HS, Choi YD, Nahm BH, Kim JK. Expression of a bifunctional fusion of the Escherichia coli genes for trehalose-6-phosphate synthase and trehalose-6-phosphate phosphatase in transgenic rice plants increases trehalose accumulation and abiotic stress tolerance without stunting growth. Plant Physiol. 131: 516-524 (2003).

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