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Optimising cotton water productivity and antioxidant capacity via foliar abscisic acid: A dual-pathway regulation mechanism

脱落酸 化学 蒸腾作用 抗氧化剂 气孔导度 过氧化氢酶 用水效率 脯氨酸 超氧化物歧化酶 耐旱性 农学 产量(工程) 园艺 丙二醛 蒸馏水 含水量 水分 渗透调节剂 植物 作物产量 抗旱性 植物生理学
作者
Muladili Abulaiti,Hongbo Wang,Xingpeng Wang,Yakang Liang,Li Zhang,Lingkun Jing,Lang Xin,Fuchang Jiang
出处
期刊:Industrial Crops and Products [Elsevier BV]
卷期号:240: 122623-122623 被引量:1
标识
DOI:10.1016/j.indcrop.2026.122623
摘要

Minimising non-productive water loss while sustaining yield is crucial for cotton cultivation in water-limited environments. Although abscisic acid (ABA) can induce stomatal closure, its synergistic regulation of antioxidant defense and water relations during the critical flowering and boll-setting stage remains poorly understood. This study aimed to elucidate whether foliar ABA application could enhance drought tolerance through a dual-pathway mechanism that concurrently improves antioxidant capacity and optimizes leaf water-use efficiency (WUEL), and to identify an optimal concentration that balances water conservation with yield stability. A two-year field experiment was conducted with foliar applications of ABA at low (AL, 50 μmol L⁻¹) and high (AH, 100 μmol L⁻¹) concentrations, alongside a distilled water control (CK). Physiological traits, endogenous hormones, antioxidant enzyme activities, and yield components were analysed. The AL treatment activated a beneficial dual-pathway response: it directly enhanced the antioxidant system, increasing superoxide dismutase, peroxidase, and catalase activities and proline content, while reducing malondialdehyde accumulation; concurrently, it orchestrated stomatal regulation, significantly lowering stomatal conductance and transpiration rate, which collectively improved WUEL. TOPSIS analysis ranked AL as the optimal treatment, as it enhanced water-saving and antioxidant capacity without significant yield loss, unlike the AH treatment. Thus, foliar application of 50 μmol L⁻¹ ABA improves drought resistance in cotton through a synergistic dual-pathway mechanism that coordinates antioxidant defence and stomatal regulation, thereby optimising water use and alleviating oxidative stress under drought conditions. Our findings provide a mechanistic basis and a practical strategy for implementing ABA in water-saving cotton production systems. • ABA application significantly enhances cotton water use efficiency and antioxidant enzyme activities. • ABA application reducing transpiration and oxidative damage. • Spraying ABA directly activates antioxidant systems and indirectly regulates hormones and photosynthesis. • Low concentration ABA improves physiological drought adaptation via stomatal control and ROS scavenging. • ABA application (50 μmol L −1 ) offering a practical water-saving strategy for arid-region cotton cultivation.
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