Stand aside stomata, another actor deserves centre stage:: the forgotten role of the internal conductance to CO2 transfer

被引:216
作者
Warren, Charles R. [1 ]
机构
[1] Univ Sydney, Sch Biol Sci, Sydney, NSW 2006, Australia
关键词
economics; internal conductance; mesophyll conductance; nitrogen; photosynthesis; stomatal conductance; transfer conductance; transpiration; water;
D O I
10.1093/jxb/erm245
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Internal conductance describes the movement of CO2 from substomatal cavities to sites of carboxylation. Internal conductance has now been measured in approximately 50 species, and in all of these species it is a large limitation of photosynthesis. It accounts for somewhat less than half of the decrease in CO2 concentrations from the atmosphere to sites of carboxylation. There have been two major findings in the past decade. First, the limitation due to internal conductance (i.e. Ci-Cc) is not fixed but varies among species and functional groups. Second, internal conductance is affected by some environmental variables and can change rapidly, for example, in response to leaf temperature, drought stress or CO2 concentration. Biochemical factors such as carbonic anhydrase or aquaporins are probably responsible for these rapid changes. The determinants of internal conductance remain elusive, but are probably a combination of leaf anatomy, morphology, and biochemical factors. In most plants, the gas phase component of internal conductance is negligible with the majority of resistance resting in the liquid phase from cell walls to sites of carboxylation. The internal conductance story is far from complete and many exciting challenges remain. Internal conductance ought to be included in models of canopy photosynthesis, but before this is feasible additional data on the variation in internal conductance among and within species are urgently required. Future research should also focus on teasing apart the different steps in the diffusion pathway (intercellular spaces, cell wall, plasmalemma, cytosol, and chloroplast envelope) since it is likely that this will provide clues as to what determines internal conductance.
引用
收藏
页码:1475 / 1487
页数:13
相关论文
共 97 条
[31]   Rapid variations of mesophyll conductance in response to changes in CO2 concentration around leaves [J].
Flexas, Jaume ;
Diaz-Espejo, Antonio ;
Galmes, Jeroni ;
Kaldenhoff, Ralf ;
Medrano, Hipolito ;
Ribas-Carbo, Miquel .
PLANT CELL AND ENVIRONMENT, 2007, 30 (10) :1284-1298
[32]   Tobacco aquaporin NtAQP1 is involved in mesophyll conductance to CO2 in vivo [J].
Flexas, Jaume ;
Ribas-Carbo, Miquel ;
Hanson, David T. ;
Bota, Josefina ;
Otto, Beate ;
Cifre, Josep ;
McDowell, Nate ;
Medrano, Hipolito ;
Kaldenhoff, Ralf .
PLANT JOURNAL, 2006, 48 (03) :427-439
[33]   A relationship between humidity response, growth form and photosynthetic operating point in C3 plants [J].
Franks, PJ ;
Farquhar, GD .
PLANT CELL AND ENVIRONMENT, 1999, 22 (11) :1337-1349
[34]  
GAASTRA P., 1959, MEDEDEL LANDBOUWHO GESCH WAGENINGER, V59, P1
[35]   Internal conductance to CO2 diffusion and C18OO discrimination in C3 leaves [J].
Gillon, JS ;
Yakir, D .
PLANT PHYSIOLOGY, 2000, 123 (01) :201-213
[36]   Photoacoustic analysis indicates that chloroplast movement does not alter liquid-phase CO2 diffusion in leaves of Alocasia brisbanensis [J].
Gorton, HL ;
Herbert, SK ;
Vogelmann, TC .
PLANT PHYSIOLOGY, 2003, 132 (03) :1529-1539
[37]   Stomatal, mesophyll conductance and biochemical limitations to photosynthesis as affected by drought and leaf ontogeny in ash and oak trees [J].
Grassi, G ;
Magnani, F .
PLANT CELL AND ENVIRONMENT, 2005, 28 (07) :834-849
[38]   Overexpression of the barley aquaporin HvPIP2;1 increases internal CO2 conductance and CO2 assimillation in the leaves of transgenic rice plants [J].
Hanba, YT ;
Shibasaka, M ;
Hayashi, Y ;
Hayakawa, T ;
Kasamo, K ;
Terashima, I ;
Katsuhara, M .
PLANT AND CELL PHYSIOLOGY, 2004, 45 (05) :521-529
[39]   Effects of leaf age on internal CO2 transfer conductance and photosynthesis in tree species having different types of shoot phenology [J].
Hanba, YT ;
Miyazawa, SI ;
Kogami, H ;
Terashima, I .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 2001, 28 (11) :1075-1084
[40]   MODELING PHOTOSYNTHESIS OF COTTON GROWN IN ELEVATED CO2 [J].
HARLEY, PC ;
THOMAS, RB ;
REYNOLDS, JF ;
STRAIN, BR .
PLANT CELL AND ENVIRONMENT, 1992, 15 (03) :271-282