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Effects of Greenhouse Microclimates on Nutrient Concentration and Growth in Maize under Deficit Irrigation Condition
Department of Soil Science and Plant Nutrition, University of Cukurova, Adana, Türkiye
* Corresponding Author: Mehmet Işik. Email:
(This article belongs to the Special Issue: Airflow and Micro-Climate Engineering: Nutrient Dynamics and Plant Growth Optimization)
Phyton-International Journal of Experimental Botany 2026, 95(8), 10 https://doi.org/10.32604/phyton.2026.077897
Received 19 December 2025; Accepted 14 July 2026; Issue published 28 August 2026
Abstract
The aim of the study examines the effects of contrasting greenhouse microclimates on nutrient uptake, dry matter yield (DMY), and water use efficiency (WUE) in maize (Zea mays L.) during the early vegetative stage, under limited irrigation conditions. The study addresses the question of how microclimatic factors, particularly airflow and the humidity of the greenhouse, affect plant growth and nutrient dynamics under deficit irrigation conditions. The experiment was established at the Research and Application Greenhouses of the Department of Soil Science and Plant Nutrition, Çukurova University, Adana, Türkiye. Two greenhouse environments were compared: first with a whitewashed glass surface and active ventilation, and second with a transparent glass surface without ventilation. Three irrigation levels were applied based on available water capacity: 50%, 75%, and 100%, with three replications. Maize P2105 was used in the experiment, and plants were harvested following 40 days of deficit irrigation management. Research findings show that a microclimate greenhouse plays a critical role in maize growth and WUE under limited irrigation. In the ventilated and lime-whitewashed greenhouse, total dry matter yield reached 18.08 g pot−1, and water use efficiency peaked at 4.76 g mm−1 under 75% irrigation, approximately three times higher than values observed in the non-ventilated greenhouse. Additionally, nitrogen and phosphorus uptake was significantly enhanced, reaching 277.87 mg pot−1 and 20.85 mg pot−1, respectively. The optimized microclimate also significantly promoted the accumulation of other macro and micronutrients; the highest potassium (1239.56 mg pot−1) and magnesium (235.61 mg pot−1) uptakes were recorded under ventilated conditions, while shoot Mn concentration significantly increased to 37.71 mg kg−1 compared to the unventilated control. These results suggest that optimized airflow and humidity conditions substantially improve physiological efficiency and nutrient acquisition under water-limited environments. Microclimate engineering is therefore recommended as a sustainable strategy to mitigate drought stress in greenhouse-based crop production.Keywords
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Copyright © 2026 The Author(s). Published by Tech Science Press.This work is licensed under a Creative Commons Attribution 4.0 International License , which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.


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