生物群落
生态系统
涡度相关法
初级生产
环境科学
大气科学
光合作用
植物功能类型
陆地生态系统
二氧化碳
生态学
生物
植物
物理
作者
Han Wang,I. Colin Prentice,Trevor F. Keenan,T. W. Davis,Ian J. Wright,William K. Cornwell,Bradley Evans,Changhui Peng
出处
期刊:Nature plants
[Nature Portfolio]
日期:2017-08-31
卷期号:3 (9): 734-741
被引量:423
标识
DOI:10.1038/s41477-017-0006-8
摘要
Gross primary production (GPP)—the uptake of carbon dioxide (CO2) by leaves, and its conversion to sugars by photosynthesis—is the basis for life on land. Earth System Models (ESMs) incorporating the interactions of land ecosystems and climate are used to predict the future of the terrestrial sink for anthropogenic CO2 1 . ESMs require accurate representation of GPP. However, current ESMs disagree on how GPP responds to environmental variations 1,2 , suggesting a need for a more robust theoretical framework for modelling 3,4 . Here, we focus on a key quantity for GPP, the ratio of leaf internal to external CO2 (χ). χ is tightly regulated and depends on environmental conditions, but is represented empirically and incompletely in today’s models. We show that a simple evolutionary optimality hypothesis 5,6 predicts specific quantitative dependencies of χ on temperature, vapour pressure deficit and elevation; and that these same dependencies emerge from an independent analysis of empirical χ values, derived from a worldwide dataset of >3,500 leaf stable carbon isotope measurements. A single global equation embodying these relationships then unifies the empirical light-use efficiency model 7 with the standard model of C3 photosynthesis 8 , and successfully predicts GPP measured at eddy-covariance flux sites. This success is notable given the equation’s simplicity and broad applicability across biomes and plant functional types. It provides a theoretical underpinning for the analysis of plant functional coordination across species and emergent properties of ecosystems, and a potential basis for the reformulation of the controls of GPP in next-generation ESMs. The uptake of CO2 by leaves, and its conversion to sugars, is the basis for life on land. This study proposes a model unifying light-use efficiency relationships and a standard model of photosynthesis across species and ecosystems, and globally.
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