Importance of oxidative electron transport over oxidative phosphorylation in optimizing photosynthesis in mesophyll protoplasts of pea (Pisum sativum L.)

被引:47
作者
Padmasree, K [1 ]
Raghavendra, AS [1 ]
机构
[1] Univ Hyderabad, Sch Life Sci, Dept Plant Sci, Hyderabad 500046, Andhra Pradesh, India
关键词
D O I
10.1034/j.1399-3054.1999.105321.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The role of mitochondrial respiration in optimizing photosynthesis was assessed in mesophyll protoplasts of pea (Pisum sativum L., cv, Arkel) by using low concentrations of oligomycin (an inhibitor of oxidative phosphorylation), antimycin A (inhibits cytochrome pathway of electron transport) and salicylhydroxamic acid (SHAM, an inhibitor of alternative oxidase), All three compounds decreased the rate of photosynthetic O-2 evolution in mesophyll protoplasts, but did not affect chloroplast photosynthesis, The inhibition of photosynthesis by these mitochondrial inhibitors was stronger at optimal CO2 (1.0 mM NaHCO3) than that at limiting CO2 (0.1 mM NaHCO3). We conclude that mitochondrial metabolism through both cytochrome and alternative pathways is essential for optimizing photosynthesis at limiting as well as at optimal CO2. The ratios of ATP to ADP in whole protoplast extracts were hardly affected, despite the marked decrease in their photosynthetic rates by SHAM. Similarly, the decrease in the ATP/ADP ratio by oligomycin or antimycin A was more pronounced at limiting CO2 than at optimal CO2. The mitochondrial oxidative electron transport, through both cytochrome and alternative pathways, therefore appears to be more important than oxidative phosphorylation in optimizing photosynthesis, particularly at limiting CO2 ( when ATP demand is expected to he low), Our results also confirm that the alternative pathway has a significant role in contributing to the cellular ATP, when the cytochrome pathway is limited.
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页码:546 / 553
页数:8
相关论文
共 26 条
[1]   COPPER ENZYMES IN ISOLATED CHLOROPLASTS - POLYPHENOLOXIDASE IN BETA-VULGARIS [J].
ARNON, DI .
PLANT PHYSIOLOGY, 1949, 24 (01) :1-15
[2]  
Azcon-Bieto J., 1992, P241
[3]   Heat generation and dissipation in plants: Can the alternative oxidative phosphorylation pathway serve a thermoregulatory role in plant tissues other than specialized organs? [J].
Breidenbach, RW ;
Saxton, MJ ;
Hansen, LD ;
Criddle, RS .
PLANT PHYSIOLOGY, 1997, 114 (04) :1137-1140
[4]   THE CONTRIBUTION OF MITOCHONDRIA TO ENERGETIC METABOLISM IN PHOTOSYNTHETIC CELLS [J].
GARDESTROM, P ;
LERNMARK, U .
JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 1995, 27 (04) :415-421
[5]  
Igamberdiev AU, 1997, PHYSIOL PLANTARUM, V99, P15, DOI 10.1034/j.1399-3054.1997.990103.x
[6]   MITOCHONDRIAL CONTRIBUTION TO PHOTOSYNTHETIC METABOLISM - A STUDY WITH BARLEY (HORDEUM-VULGARE L) LEAF PROTOPLASTS AT DIFFERENT LIGHT INTENSITIES AND CO2 CONCENTRATIONS [J].
KROMER, S ;
MALMBERG, G ;
GARDESTROM, P .
PLANT PHYSIOLOGY, 1993, 102 (03) :947-955
[7]   ON THE ROLE OF MITOCHONDRIAL OXIDATIVE-PHOSPHORYLATION IN PHOTOSYNTHESIS METABOLISM AS STUDIED BY THE EFFECT OF OLIGOMYCIN ON PHOTOSYNTHESIS IN PROTOPLASTS AND LEAVES OF BARLEY (HORDEUM-VULGARE) [J].
KROMER, S ;
HELDT, HW .
PLANT PHYSIOLOGY, 1991, 95 (04) :1270-1276
[8]  
KROMER S, 1995, ANNU REV PLANT PHYS, V46, P45, DOI 10.1146/annurev.pp.46.060195.000401
[9]   MITOCHONDRIAL OXIDATIVE-PHOSPHORYLATION PARTICIPATING IN PHOTOSYNTHETIC METABOLISM OF A LEAF CELL [J].
KROMER, S ;
STITT, M ;
HELDT, HW .
FEBS LETTERS, 1988, 226 (02) :352-356
[10]  
LAMBERS H, 1985, ENCY PLANT PHYSL, V18, P418