Leaf water relations determine the trade‐off between ozone resistance and stomatal functionality in urban tree species

Author:

Li Shenglan123ORCID,Li Shuangjiang234,Agathokleous Evgenios23ORCID,Hao Guangyou5ORCID,Wang Shenglei23,Feng Zhaozhong23ORCID

Affiliation:

1. School of Environmental Science and Engineering Nanjing University of Information Science and Technology Nanjing China

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

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

4. College of Resource and Environment Anhui Science and Technology University Fengyang China

5. CAS Key Laboratory of Forest Ecology and Management, Institute of Applied Ecology Chinese Academy of Sciences Shenyang China

Abstract

AbstractUrban trees possess different capacities to mitigate ozone (O3) pollution through stomatal uptake. Stomatal closure protects trees from oxidative damage but limits their growth. To date, it is unclear how plant hydraulic function affect stomatal behaviour and determine O3 resistance. We assessed gas exchange and hydraulic traits in three subtropical urban tree species, Celtis sinensis, Quercus acutissima, and Q. nuttallii, under nonfiltered ambient air (NF) and elevated O3 (NF60). NF60 decreased photosynthetic rate (An) and stomatal conductance (gs) only in Q. acutissima and Q. nuttallii. Maintained An in C. sinensis suggested high O3 resistance and was attributed to higher leaf capacitance at the full turgor. However, this species exhibited a reduced stomatal sensitivity to vapour pressure deficit and an increased minimal gs under NF60. Such stomatal dysfunction did not decrease intrinsic water use efficiency (WUE) due to a tight coupling of An and gs. Conversely, Q. acutissima and Q. nuttallii showed maintained stomatal sensitivity and increased WUE, primarily correlated with gs and leaf water relations, including relative water content and osmotic potential at turgor loss point. Our findings highlight a trade‐off between O3 resistance and stomatal functionality, with efficient stomatal control reducing the risk of hydraulic failure under combined stresses.

Publisher

Wiley

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