Photorespiratory Metabolism and Nodule Function: Behavior of Lotus japonicus Mutants Deficient in Plastid Glutamine Synthetase

被引:23
作者
Garcia-Calderon, Margarita [1 ]
Chiurazzi, Maurizio [2 ]
Espuny, M. Rosario [3 ]
Marquez, Antonio J. [1 ]
机构
[1] Univ Seville, Dept Bioquim Vegetal & Biol Mol, E-41012 Seville, Spain
[2] Inst Genet & Biophys A Buzzati Traverso, I-80131 Naples, Italy
[3] Univ Seville, Dept Microbiol, Fac Biol, E-41012 Seville, Spain
关键词
MEDICAGO-TRUNCATULA; NITROGEN-FIXATION; CO2; ENRICHMENT; HIGHER-PLANTS; NITRATE ASSIMILATION; MOLECULAR ANALYSIS; EXPRESSION; LEGUME; ROOT; GROWTH;
D O I
10.1094/MPMI-07-11-0200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Two photorespiratory mutants of Lotus japonicus deficient in plastid glutamine synthetase (GS(2)) were examined for their capacity to establish symbiotic association with Mesorhizobium Ion bacteria. Biosynthetic glutamine synthetase (GS) activity was reduced by around 40% in crude nodule extracts from mutant plants as compared with the wild type (WT). Western blot analysis further confirmed the lack of GS(2) polypeptide in mutant nodules. The decrease in GS activity affected the nodular carbon metabolism under high CO2 (suppressed photorespiration) conditions, although mutant plants were able to form nodules and fix atmospheric nitrogen. However, when WT and mutant plants were transferred to an ordinary air atmosphere (photorespiratory active conditions) the nodulation process and nitrogen fixation were substantially affected, particularly in mutant plants. The number and fresh weight of mutant nodules as well as acetylene reduction activity showed a strong inhibition compared with WT plants. Optical microscopy studies from mutant plant nodules revealed the anticipated senescence phenotype linked to an important reduction in starch and sucrose levels. These results show that, in Lotus japonicus, photorespiration and, particularly, GS(2) deficiency result in profound limitations in carbon metabolism that affect the nodulation process and nitrogen fixation.
引用
收藏
页码:211 / 219
页数:9
相关论文
共 53 条
[1]   Molecular analysis of two mutants from Lotus japonicus deficient in plastidic glutamine synthetase:: functional properties of purified GLN2 enzymes [J].
Betti, Marco ;
Arcondeguy, Tania ;
Marquez, Antonio J. .
PLANTA, 2006, 224 (05) :1068-1079
[2]   INHIBITION OF PHOTOSYNTHESIS IN BARLEY WITH DECREASED LEVELS OF CHLOROPLASTIC GLUTAMINE-SYNTHETASE ACTIVITY [J].
BLACKWELL, RD ;
MURRAY, AJS ;
LEA, PJ .
JOURNAL OF EXPERIMENTAL BOTANY, 1987, 38 (196) :1799-1809
[3]  
BUENDIACLAVERIA AM, 1986, J APPL BACTERIOL, V61, P1, DOI 10.1111/j.1365-2672.1986.tb03752.x
[4]   Continuous CO2 enrichment leads to increased nodule biomass, carbon availability to nodules and activity of carbon-metabolising enzymes but does not enhance specific nitrogen fixation in pea [J].
Cabrerizo, PM ;
González, EM ;
Aparicio-Tejo, PM ;
Arrese-Igor, C .
PHYSIOLOGIA PLANTARUM, 2001, 113 (01) :33-40
[5]   Heteromeric assembly of the cytosolic glutamine synthetase polypeptides of Medicago truncatula: complementation of a glnA Escherichia coli mutant with a plant domain-swapped enzyme [J].
Carvalho, H ;
Sunkel, C ;
Salema, R ;
Cullimore, JV .
PLANT MOLECULAR BIOLOGY, 1997, 35 (05) :623-632
[6]   Nodule-specific modulation of glutamine synthetase in transgenic Medicago truncatula leads to inverse alterations in asparagine synthetase expression [J].
Carvalho, HG ;
Lopes-Cardoso, IA ;
Lima, LM ;
Melo, PM ;
Cullimore, JV .
PLANT PHYSIOLOGY, 2003, 133 (01) :243-252
[7]   Antisense inhibition of NADH glutamate synthase impairs carbon/nitrogen assimilation in nodules of alfalfa (Medicago sativa L.) [J].
Cordoba, E ;
Shishkova, S ;
Vance, CP ;
Hernández, G .
PLANT JOURNAL, 2003, 33 (06) :1037-1049
[8]  
Coruzzi G., 2000, Biochemistry and molecular biology of plants, P358
[9]   Glutamine synthetase in higher plants: Regulation of gene and protein expression from the organ to the cell [J].
Cren, M ;
Hirel, B .
PLANT AND CELL PHYSIOLOGY, 1999, 40 (12) :1187-1193
[10]   Deficiency in plastidic glutamine synthetase alters proline metabolism and transcriptomic response in Lotus japonicus under drought stress [J].
Diaz, Pedro ;
Betti, Marco ;
Sanchez, Diego H. ;
Udvardi, Michael K. ;
Monza, Jorge ;
Marquez, Antonio J. .
NEW PHYTOLOGIST, 2010, 188 (04) :1001-1013