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HORT640 - Metabolic Plant Physiology
References, sedoheptulose-1,7-bisphosphatase
Famiani F, Walker RP, Tecsi L, Chen ZH, Proietti P, Leegood RC. An immunohistochemical study of the compartmentation of metabolism during the development of grape (Vitis vinifera L.) berries. J. Exp. Bot. 51: 675-683 (2000).
Hahn D, Kaltenbach C, Kuck U. The Calvin cycle enzyme sedoheptulose-1,7-bisphosphatase is encoded by a light-regulated gene in Chlamydomonas reinhardtii. Plant Mol. Biol. 36: 929-934 (1998).
Hahn D, Kuck U. Nucleotide sequence of a cDNA encoding the chloroplast sedoheptulose-1,7-bisphosphatase from Chlamydomonas reinhardtii. Plant Physiol. 104: 1101-1102 (1994).
Lawson T, Bryant B, Lefebvre S, Lloyd JC, Raines CA. Decreased SBPase activity alters growth and development in transgenic tobacco plants. Plant Cell Environ. 29: 48-58 (2006).
Lawson T, Lefebvre S, Baker NR, Morison JI, Raines CA. Reductions in mesophyll and guard cell photosynthesis impact on the control of stomatal responses to light and CO2. J. Exp. Bot. 59: 3609-3619 (2008).
Lefebvre S, Lawson T, Zakhleniuk OV, Lloyd JC, Raines CA. Increased sedoheptulose-1,7-bisphosphatase activity in transgenic tobacco plants stimulates photosynthesis and growth from an early stage in development. Plant Physiol. 138: 451-460 (2005).
Olcer H, Lloyd JC, Raines CA. Photosynthetic capacity is differentially affected by reductions in sedoheptulose-1,7-bisphosphatase activity during leaf development in transgenic tobacco plants. Plant Physiol. 125: 982-989 (2001).
Paul M, Pellny T, Goddijn O. Enhancing photosynthesis with sugar signals. Trends Plant Sci. 6: 197-200 (2001).
Paul MJ, Driscoll SP, Andralojc PJ, Knight JS, Gray JC, Lawlor DW. Decrease of phosphoribulokinase activity by antisense RNA in transgenic tobacco: definition of the light environment under which phosphoribulokinase is not in large excess. Planta 211: 112-119 (2000).
Poolman MG, Fell DA, Raines CA. Elementary modes analysis of photosynthate metabolism in the chloroplast stroma. Eur. J. Biochem. 270: 430-439 (2003).
Poolman MG, Olcer H, Lloyd JC, Raines CA, Fell DA. Computer modelling and experimental evidence for two steady states in the photosynthetic Calvin cycle. Eur. J. Biochem. 268: 2810-2816 (2001).
Rogers A, Fischer BU, Bryant J, Frehner M, Blum H, Raines CA, Long SP. Acclimation of photosynthesis to elevated CO2 under low-nitrogen nutrition is affected by the capacity for assimilate utilization. Perennial ryegrass under free-air CO2 enrichment. Plant Physiol. 118: 683-689 (1998).
Ruelland E, Miginiac-Maslow M. Regulation of chloroplast enzyme activities by thioredoxins: activation or relief from inhibition? Trends Plant Sci. 4: 136-141 (1999).
Wingler A, Quick WP, Bungard RA, Bailey KJ, Lea PJ, Leegood RC. The role of photorespiration during drought stress: an analysis utilizing barley mutants with reduced activities of photorespiratory enzymes. Plant Cell Environ. 22: 361-373 (1999).
Woodrow IE, Murphy DJ, Walker DA. Regulation of photosynthetic carbon metabolism. The effect of inorganic phosphate on stromal sedoheptulose-1,7-bisphosphatase. Eur. J. Biochem. 132: 121-123 (1983).
Yabuta Y, Tamoi M, Yamamoto K, Tomizawa K, Yokota A, Shigeoka S. Molecular design of photosynthesis-elevated chloroplasts for mass accumulation of a foreign protein. Plant Cell Physiol. 49: 375-385 (2008).
Yang X, Liang Z, Wen X, Lu C. Genetic engineering of the biosynthesis of glycinebetaine leads to increased tolerance of photosynthesis to salt stress in transgenic tobacco plants. Plant Mol. Biol. 66: 73-86 (2008).
Zhu XG, de Sturler E, Long SP. Optimizing the distribution of resources between enzymes of carbon metabolism can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol. 145: 513-526 (2007).
Number of references = 18
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