Scaling maximum growth rates across photosynthetic organisms

被引:118
作者
Nielsen, SL
Enriquez, S
Duarte, CM
SandJensen, K
机构
[1] CSIC, CTR ESTUDIOS AVANZADOS BLANES, E-17300 BLANES, GIRONA, SPAIN
[2] UNIV COPENHAGEN, FRESHWATER BIOL LAB, DK-3400 HILLEROD, DENMARK
关键词
growth rate; nutrient concentration; plants; specific leaf area; thickness; EELGRASS ZOSTERA-MARINA; COSTATUM GREV CLEVE; FRESH-WATER ALGAE; LEAF LIFE-SPAN; CHEMICAL-COMPOSITION; SKELETONEMA-COSTATUM; CELL-SIZE; NITROGEN-NUTRITION; PHYTOPLANKTON COMMUNITIES; BIOMASS ALLOCATION;
D O I
10.2307/2389840
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
1. This study provides evidence for the existence of general intrinsic patterns controlling the maximum growth rate of photosynthetic organisms, based on a compilation of data from more than 120 reports, the species ranging from unicellular algae to trees and thick-leaved desert plants. 2. We used thickness and nutrient concentration of the photosynthetic tissue to scale differences in maximum growth rate among plants, based on the demonstrated importance of these plant traits in regulating the maximum growth rates of particular plant groups. 3. The growth rate declined with increasing thickness of the photosynthetic structures and increased with increasing nitrogen and phosphorus concentration. The strong dependence of growth rate and nutrient concentrations on tissue thickness reflect broad-scale patterns and not the adaptive response of individual or closely related species of similar tissue thickness to varying environmental conditions. 4. The scaling of maximum growth rate is similar to the scaling of metabolic rate to animal size. Thickness of the photosynthetic structures therefore plays an important role in the environmental control of plant performance and evolution, setting thresholds for the growth and productivity of photosynthetic organisms.
引用
收藏
页码:167 / 175
页数:9
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