Relationships between photosynthesis, nitrogen and leaf structure in 14 grass species and their dependence on the basis of expression

被引:89
作者
Garnier, E [1 ]
Salager, JL [1 ]
Laurent, G [1 ]
Sonié, L [1 ]
机构
[1] CNRS, UPR 9056, Ctr Ecol Fonct & Evolut, F-34293 Montpellier 5, France
关键词
leaf anatomy; leaf nitrogen; leaf thickness; grasses; light penetration; mesophyll; assimilation rate; mechanical support;
D O I
10.1046/j.1469-8137.1999.00426.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The relationships between leaf structure, nitrogen concentration and CO2 assimilation rate (A) were studied far 14 grass species grown in the laboratory under non-limiting nutrient conditions. Structural features included leaf thickness and density, and the proportion of leaf volume occupied by different types of tissue (mesophyll, epidermis, vessels and sclerenchyma). Relationships were assessed for data expressed per unit leaf area and fresh mass. The latter was found to be closely related to leaf volume, which allowed us to use A per unit leaf fresh mass (A(fm)) as a surrogate of A per unit leaf volume. Assimilation rate per unit leaf area (A(a)) was positively correlated with leaf thickness and with the amount of mesophyll per unit leaf area; the relationship with leaf nitrogen content per unit area was only marginally significant. A(fm) was negatively correlated with leaf thickness and positively with fresh mass-based leaf organic nitrogen concentration. A multiple regression involving these two variables explained 81 %, of the variance in A(fm). The value of A(fm) was also significantly related to the proportion of mesophyll in the leaf volume, but surprisingly the correlation was negative. This was because thin leaves with high A(fm) and nitrogen concentration had proportionally more mechanically supportive tissues than thick ones; as a consequence, they also had a lower proportion of mesophyll. These data suggest that, in addition to leaf nitrogen, leaf thickness has a strong impact on CO2 assimilation rate for the grass species studied.
引用
收藏
页码:119 / 129
页数:11
相关论文
共 42 条
[1]   LIGHT-HARVESTING AMONG PHOTOSYNTHETIC ORGANISMS [J].
AGUSTI, S ;
ENRIQUEZ, S ;
FROSTCHRISTENSEN, H ;
SANDJENSEN, K ;
DUARTE, CM .
FUNCTIONAL ECOLOGY, 1994, 8 (02) :273-279
[2]   The causes of inherently slow growth in alpine plants: An analysis based on the underlying carbon economies of alpine and lowland Poa species [J].
Atkin, OK ;
Botman, B ;
Lambers, H .
FUNCTIONAL ECOLOGY, 1996, 10 (06) :698-707
[3]   FLAG LEAF PHOTOSYNTHESIS OF TRITICUM-AESTIVUM AND RELATED DIPLOID AND TETRAPLOID SPECIES [J].
AUSTIN, RB ;
MORGAN, CL ;
FORD, MA .
ANNALS OF BOTANY, 1982, 49 (02) :177-189
[4]   PHYSIOLOGICAL DETERMINANTS OF GROWTH-RATE IN RESPONSE TO PHOSPHORUS SUPPLY IN WILD AND CULTIVATED HORDEUM SPECIES [J].
CHAPIN, FS ;
GROVES, RH ;
EVANS, LT .
OECOLOGIA, 1989, 79 (01) :96-105
[5]   MODELS FOR MESOPHYLL CELL ARRANGEMENT IN LEAVES OF RYEGRASS (LOLIUM-PERENNE L) [J].
CHARLESEDWARDS, DA ;
CHARLESE.J ;
SANT, FT .
PLANTA, 1972, 104 (04) :297-+
[6]  
CHARLESEDWARDS DA, 1975, ENV BIOL CONTROL PHO, P37
[7]   Broad-scale comparison of photosynthetic rates across phototrophic organisms [J].
Enriquez, S ;
Duarte, CM ;
SandJensen, K ;
Nielsen, SL .
OECOLOGIA, 1996, 108 (02) :197-206
[8]   PHOTOSYNTHESIS AND NITROGEN RELATIONSHIPS IN LEAVES OF C-3 PLANTS [J].
EVANS, JR .
OECOLOGIA, 1989, 78 (01) :9-19
[9]   Leaf anatomy enables more equal access to light and CO2 between chloroplasts [J].
Evans, JR .
NEW PHYTOLOGIST, 1999, 143 (01) :93-104
[10]   Carbon dioxide diffusion inside leaves [J].
Evans, JR ;
vonCaemmerer, S .
PLANT PHYSIOLOGY, 1996, 110 (02) :339-346