Climate gradient and leaf carbon investment influence the effects of climate change on water use efficiency of forests: A meta‐analysis

Author:

Li Shenglan123ORCID,Agathokleous Evgenios23ORCID,Li Shuangjiang23,Xu Yansen23ORCID,Xia Jiaxuan4,Feng Zhaozhong23ORCID

Affiliation:

1. School of Ecology and Applied Meteorology Nanjing University of Information Science and Technology Nanjing Jiangsu China

2. Key Laboratory of Ecosystem Carbon Source and Sink, China Meteorological Administration (ECSS‐CMA) Nanjing University of Information Science and Technology Nanjing Jiangsu China

3. Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters (CIC‐FEMD) Nanjing University of Information Science and Technology Nanjing Jiangsu China

4. National Engineering and Technology Center for Information Agriculture, Engineering Research Center of Smart Agriculture, Ministry of Education Nanjing Agricultural University Nanjing Jiangsu China

Abstract

AbstractForest ecosystems cover a large area of the global land surface and are important carbon sinks. The water‐carbon cycles of forests are prone to climate change, but uncertainties remain regarding the magnitude of water use efficiency (WUE) response to climate change and the underpinning mechanism driving WUE variation. We conducted a meta‐analysis of the effects of elevated CO2 concentration (eCO2), drought and elevated temperature (eT) on the leaf‐ to plant‐level WUE, covering 80 field studies and 95 tree species. The results showed that eCO2 increased leaf intrinsic and instantaneous WUE (WUEi, WUEt), whereas drought enhanced both leaf‐ and plant‐level WUEs. eT increased WUEi but decreased carbon isotope‐based WUE, possibly due to the influence of mesophyll conductance. Stimulated leaf‐level WUE by drought showed a progressing trend with increasing latitude, while eCO2‐induced WUE enhancement showed decreasing trends after >40° N. These latitudinal gradients might influence the spatial pattern of climate and further drove WUE variation. Moreover, high leaf‐level WUE under eCO2 and drought was accompanied by low leaf carbon contents. Such a trade‐off between growth efficiency and defence suggests a potentially compromised tolerance to diseases and pests. These findings add important ecophysiological parameters into climate models to predict carbon‐water cycles of forests.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Physiology

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