Genetic manipulation of key photosynthetic enzymes in the C-4 plant Flaveria bidentis

被引:78
作者
Furbank, RT
Chitty, JA
Jenkins, CLD
Taylor, WC
Trevanion, SJ
vonCaemmerer, S
Ashton, AR
机构
[1] AUSTRALIAN NATL UNIV,RES SCH BIOL SCI,COOPERAT RES CTR PLANT SCI,CANBERRA,ACT 2601,AUSTRALIA
[2] AUSTRALIAN NATL UNIV,RES SCH BIOL SCI,CANBERRA,ACT 2601,AUSTRALIA
来源
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY | 1997年 / 24卷 / 04期
关键词
D O I
10.1071/PP97028
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The NADP-malic enzyme type C-4 dicot Flaveria bidentis (L.) Kuntze was transformed with antisense and cosense gene constructs that resulted in specific decreases in single photosynthetic enzymes. The enzymes targeted were ribulose-1,5-bisphosphate carboxylase/oxygenase [EC 4.1.1.39] (Rubisco), pyruvate, Pi dikinase [EC 2.7.9.1] (PPDK) and NADP malate dehydrogenase [EC 1.1.1.82] (NADP-MDH). These enzymes were chosen as targets because they have low activity compared to photosynthetic rates (Rubisco), are subject to complex covalent regulation (NADP-MDH), or both (PPDK). T1 progeny of a number of lines of these transformants were examined for the effects of these gene constructs on enzyme levels and photosynthetic performance. Rubisco antisense transformants expressing between 15 and 100% of wild-type enzyme activity were obtained. Pyruvate, Pi dikinase antisense lines were obtained with 40-100% wild-type levels. NADP malate dehydrogenase sense constructs caused a co-suppression of enzyme activity with some lines containing less than 2% of wild-type activity. Under saturating illumination, the control coefficients for these enzymes were determined to be up to 0.7 for Rubisco, 0.2-0.3 for PPDK and effectively zero for NADP-MDH. The implications of these observations for the regulation of photosynthetic flux and metabolism in C-4 plants and the role of regulation by covalent modification are discussed.
引用
收藏
页码:477 / 485
页数:9
相关论文
共 43 条
[1]   NEW CLONING VEHICLES FOR TRANSFORMATION OF HIGHER-PLANTS [J].
AN, G ;
WATSON, BD ;
STACHEL, S ;
GORDON, MP ;
NESTER, EW .
EMBO JOURNAL, 1985, 4 (02) :277-284
[2]  
Ap Rees T., 1994, Plant Cell and Environment, V17, P587, DOI 10.1111/j.1365-3040.1994.tb00151.x
[3]  
Ashton A, 1990, METHODS PLANT BIOCH, V3, P39, DOI DOI 10.1016/B978-0-12-461013-2.50010-1
[4]   REGULATION OF C-4 PHOTOSYNTHESIS - REGULATION OF ACTIVATION AND INACTIVATION OF NADP-MALATE DEHYDROGENASE BY NADP AND NADPH [J].
ASHTON, AR ;
HATCH, MD .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1983, 227 (02) :416-424
[5]   RELATIONSHIPS BETWEEN CO2 EXCHANGE-RATES AND ACTIVITIES OF PYRUVATE,PI DIKINASE AND RIBULOSE BISPHOSPHATE CARBOXYLASE, CHLOROPHYLL CONCENTRATION, AND CELL-VOLUME IN MAIZE LEAVES [J].
BAER, GR ;
SCHRADER, LE .
PLANT PHYSIOLOGY, 1985, 77 (03) :612-616
[6]   REGULATION OF CO2 ASSIMILATION IN OXYGENIC PHOTOSYNTHESIS - THE FERREDOXIN THIOREDOXIN SYSTEM - PERSPECTIVE ON ITS DISCOVERY, PRESENT STATUS, AND FUTURE-DEVELOPMENT [J].
BUCHANAN, BB .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1991, 288 (01) :1-9
[7]   GENETIC-TRANSFORMATION OF THE C-4 PLANT, FLAVERIA-BIDENTIS [J].
CHITTY, JA ;
FURBANK, RT ;
MARSHALL, JS ;
CHEN, ZH ;
TAYLOR, WC .
PLANT JOURNAL, 1994, 6 (06) :949-956
[8]   THE ISOLATION AND CHARACTERIZATION OF MUTANTS OF THE C-4 PHOTOSYNTHETIC PATHWAY [J].
DEVER, LV ;
BLACKWELL, RD ;
FULLWOOD, NJ ;
LACUESTA, M ;
LEEGOOD, RC ;
ONEK, LA ;
PEARSON, M ;
LEA, PJ .
JOURNAL OF EXPERIMENTAL BOTANY, 1995, 46 :1363-1376
[9]   CO2 ASSIMILATION AND ACTIVITIES OF PHOTOSYNTHETIC ENZYMES IN HIGH CHLOROPHYLL FLUORESCENCE MUTANTS OF MAIZE HAVING LOW-LEVELS OF RIBULOSE 1,5-BISPHOSPHATE CARBOXYLASE [J].
EDWARDS, GE ;
JENKINS, CLD ;
ANDREWS, J .
PLANT PHYSIOLOGY, 1988, 86 (02) :533-539
[10]   PYRUVATE,PI DIKINASE AND NADP-MALATE DEHYDROGENASE IN C-4 PHOTOSYNTHESIS - PROPERTIES AND MECHANISM OF LIGHT DARK REGULATION [J].
EDWARDS, GE ;
NAKAMOTO, H ;
BURNELL, JN ;
HATCH, MD .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1985, 36 :255-286