共 107 条
A new theory of plant-microbe nutrient competition resolves inconsistencies between observations and model predictions
被引:56
作者:
Zhu, Qing
[1
]
Riley, William J.
[1
]
Tang, Jinyun
[1
]
机构:
[1] Lawrence Berkeley Natl Lab, Climate & Ecosyst Sci Div, Climate Sci Dept, Berkeley, CA 94720 USA
关键词:
N-15;
tracer;
earth system model;
grassland;
microbial N uptake;
nutrient competition model;
nutrient competition theory;
plant N uptake;
plant-microbe competition;
ORGANIC NITROGEN UPTAKE;
EARTH SYSTEM MODEL;
PHOSPHORUS LIMITATION;
INORGANIC NITROGEN;
TROPICAL FORESTS;
BASIC EVALUATION;
GLOBAL ANALYSIS;
UPTAKE KINETICS;
BOREAL FOREST;
SOIL;
D O I:
10.1002/eap.1490
中图分类号:
Q14 [生态学(生物生态学)];
学科分类号:
071012 ;
0713 ;
摘要:
Terrestrial plants assimilate anthropogenic CO2 through photosynthesis and synthesizing new tissues. However, sustaining these processes requires plants to compete with microbes for soil nutrients, which therefore calls for an appropriate understanding and modeling of nutrient competition mechanisms in Earth System Models (ESMs). Here, we survey existing plant-microbe competition theories and their implementations in ESMs. We found no consensus regarding the representation of nutrient competition and that observational and theoretical support for current implementations are weak. To reconcile this situation, we applied the Equilibrium Chemistry Approximation (ECA) theory to plant-microbe nitrogen competition in a detailed grassland N-15 tracer study and found that competition theories in current ESMs fail to capture observed patterns and the ECA prediction simplifies the complex nature of nutrient competition and quantitatively matches the N-15 observations. Since plant carbon dynamics are strongly modulated by soil nutrient acquisition, we conclude that (1)predicted nutrient limitation effects on terrestrial carbon accumulation by existing ESMs may be biased and (2) our ECA-based approach may improve predictions by mechanistically representing plant-microbe nutrient competition.
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页码:875 / 886
页数:12
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