The C4 pathway:: an efficient CO2 pump

被引:304
作者
von Caemmerer, S
Furbank, RT
机构
[1] CSIRO Plant Ind, Canberra, ACT 2601, Australia
[2] Australian Natl Univ, Res Sch Biol Sci, Canberra, ACT 2601, Australia
关键词
C-4; photosynthesis; CO2; leakage; photosynthetic efficiency; modelling photosynthesis;
D O I
10.1023/A:1025830019591
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The C-4 pathway is a complex combination of both biochemical and morphological specialisation, which provides an elevation of the CO2 concentration at the site of Rubisco. We review the key parameters necessary to make the C-4 pathway function efficiently, focussing on the diffusion of CO2 out of the bundle sheath compartment. Measurements of cell wall thickness show that the thickness of bundle sheath cell walls in C-4 species is similar to cell wall thickness of C-3 mesophyll cells. Furthermore, NAD-ME type C-4 species, which do not have suberin in their bundle sheath cell walls, do not appear to compensate for this with thicker bundle sheath cell walls. Uncertainties in the CO2 diffusion properties of membranes, such as the plasmalemma, choroplast and mitochondrial membranes make it difficult to estimate bundle sheath diffusion resistance from anatomical measurements, but the cytosol itself may account for more than half of the final calculated resistance value for CO2 leakage. We conclude that the location of the site of decarboxylation, its distance from the mesophyll interface and the physical arrangement of chloroplasts and mitochondria in the bundle sheath cell are as important to the efficiency of the process as the properties of the bundle sheath cell wall. Using a mathemathical model of C-4 photosynthesis, we also examine the relationship between bundle sheath resistance to CO2 diffusion and the biochemical capacity of the C-4 photosynthetic pathway and conclude that bundle sheath resistance to CO2 diffusion must vary with biochemical capacity if the efficiency of the C-4 pump is to be maintained. Finally, we construct a mathematical model of single cell C-4 photosynthesis in a C-3 mesophyll cell and examine the theoretical efficiency of such a C-4 photosynthetic CO2 pump.
引用
收藏
页码:191 / 207
页数:17
相关论文
共 89 条
[71]  
Sage RF, 1999, C4 PLANT BIOL, DOI DOI 10.1016/B978-0-12-416027
[72]  
SAGE RF, 1999, C4 PLANT BIOL, P173
[73]   Associations between partitioning of carboxylase activity and bundle sheath leakiness to CO2, carbon isotope discrimination, photosynthesis, and growth in sugarcane [J].
Saliendra, NZ ;
Meinzer, FC ;
Perry, M ;
Thom, M .
JOURNAL OF EXPERIMENTAL BOTANY, 1996, 47 (300) :907-914
[74]   Expressing an RbcS antisense gene in transgenic Flaveria bidentis leads to an increased quantum requirement for CO2 fixed in photosystems I and II [J].
Siebke, K ;
vonCaemmerer, S ;
Badger, M ;
Furbank, RT .
PLANT PHYSIOLOGY, 1997, 115 (03) :1163-1174
[75]   Aberrant chloroplasts in transgenic rice plants expressing a high level of maize NADP-dependent malic enzyme [J].
Takeuchi, K ;
Akagi, H ;
Kamasawa, N ;
Osumi, M ;
Honda, H .
PLANTA, 2000, 211 (02) :265-274
[76]   Effects of HgCl2 on CO2 dependence of leaf photosynthesis:: Evidence indicating involvement of aquaporins in CO2 diffusion across the plasma membrane [J].
Terashima, I ;
Ono, K .
PLANT AND CELL PHYSIOLOGY, 2002, 43 (01) :70-78
[77]   High level expression of C4-specific NADP-malic enzyme in leaves and impairment of photoautotrophic growth in a C3 plant, rice [J].
Tsuchida, H ;
Tamai, T ;
Fukayama, H ;
Agarie, S ;
Nomura, M ;
Onodera, H ;
Ono, K ;
Nishizawa, Y ;
Lee, BH ;
Hirose, S ;
Toki, S ;
Ku, MSB ;
Matsuoka, M ;
Miyao, M .
PLANT AND CELL PHYSIOLOGY, 2001, 42 (02) :138-145
[78]  
USUDA H, 1984, PLANT CELL PHYSIOL, V25, P1297
[79]  
von Caemmerer S., 2000, Biochemical models of leafphotosynthesis
[80]  
Von Caemmerer S., 1999, C4 Plant Biology, P173, DOI DOI 10.1104/PP.121.2.579