Morphological plasticity of root growth under mild water stress increases water use efficiency without reducing yield in maize
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Published:2017-08-29
Issue:16
Volume:14
Page:3851-3858
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Cai Qian, Zhang Yulong, Sun Zhanxiang, Zheng Jiaming, Bai Wei, Zhang Yue, Liu Yang, Feng Liangshan, Feng Chen, Zhang Zhe, Yang Ning, Evers Jochem B., Zhang LizhenORCID
Abstract
Abstract. A large yield gap exists in rain-fed maize (Zea mays L.) production in semi-arid regions, mainly caused by frequent droughts halfway through the crop-growing period due to uneven distribution of rainfall. It is questionable whether irrigation systems are economically required in such a region since the total amount of rainfall does generally meet crop requirements. This study aimed to quantitatively determine the effects of water stress from jointing to grain filling on root and shoot growth and the consequences for maize grain yield, above- and below-ground dry matter, water uptake (WU) and water use efficiency (WUE). Pot experiments were conducted in 2014 and 2015 with a mobile rain shelter to achieve conditions of no, mild or severe water stress. Maize yield was not affected by mild water stress over 2 years, while severe stress reduced yield by 56 %. Both water stress levels decreased root biomass slightly but shoot biomass substantially. Mild water stress decreased root length but increased root diameter, resulting in no effect on root surface area. Due to the morphological plasticity in root growth and the increase in root ∕ shoot ratio, WU under water stress was decreased, and overall WUE for both above-ground dry matter and grain yield increased. Our results demonstrate that an irrigation system might be not economically and ecologically necessary because the frequently occurring mild water stress did not reduce crop yield much. The study helps us to understand crop responses to water stress during a critical water-sensitive period (middle of the crop-growing season) and to mitigate drought risk in dry-land agriculture.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
Reference40 articles.
1. Abendroth, L. J., Elmore, R. W., Boyer, M. J., and Marlay, S. K.: Corn Growth and Development. PMR 1009. Iowa State University Extension, Ames, Iowa, USA, available at: https://store.extension.iastate.edu/Product/Corn-Growth-and-Development (last access: 8 June 2017), 2011. 2. Beis, A. and Patakas, A.: Differential physiological and biochemical responses to drought in grapevines subjected to partial root drying and deficit irrigation, Eur. J. Agron., 62, 90–97, 2015. 3. Cakir, R.: Effect of water stress at different development stages on vegetative and reproductive growth of corn, Field Crop Res., 89, 1–16, 2004. 4. Claassen, M. M. and Shaw, R. H.: Water deficit effects on corn. II. Grain components, Agron. J., 62, 652–655, 1970. 5. Davies, W. J. and Zhang, J.: Root signals and the regulation of growth and development of plants in drying soil, Ann. Rev. Plant Phys., 42, 55–76, 1991.
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