Alavi Seyed Mohammad, Kamali Maryam, Selahvarzi Yahya, Ansari Sana
Department of Water Science and Engineering, University of Tehran, Tehran, Iran.
Department of Horticultural Science, Faculty of Agriculture, Ferdowsi University of Mashhad, Mashhad, Iran.
Sci Rep. 2023 Oct 21;13(1):18019. doi: 10.1038/s41598-023-45042-1.
This study explored the use of deficit irrigation techniques for water management in the hydroponic greenhouse cultivation of cut roses. A factorial experiment was conducted using three irrigation treatments: full irrigation (FI), partial root drying (PRD), and sustained deficit irrigation (SDI), and three doses of titanium dioxide nanoparticle foliar application (0, 15, and 30 ppm) as stress alleviation. Results showed that drought stress increased biochemical parameters such as the plants' proline and total phenol content. Compared to SDI treatment, the PRD treatments have an increase in flower number by 40%. The PRD strategy has positive effects on drought tolerance by increasing osmotic and elastic adjustment. Therefore, higher relative water content and longer root length in PRD treatments were observed. Thus, Biomass water use efficiency significantly increased in PRD treatments compared to others. In the PRD treatment, yield WUE increases by 26% and 61% compared to FI and SDI, respectively. The results showed TiO-NPs positively affected mitigating and even improving some traits in drought stress conditions. These results suggest the superiority of the PRD strategy, which improves growth characteristics and water use efficiency, leading to increased sustainability, reduced environmental impact of greenhouse toxic wastewater, and total profitability of the greenhouse.
本研究探讨了亏缺灌溉技术在水培温室栽培月季切花水分管理中的应用。采用析因试验,设置了三种灌溉处理:充分灌溉(FI)、部分根区干燥(PRD)和持续亏缺灌溉(SDI),以及三种剂量的纳米二氧化钛叶面喷施(0、15和30 ppm)作为缓解胁迫措施。结果表明,干旱胁迫增加了植物脯氨酸和总酚含量等生化参数。与SDI处理相比,PRD处理的花朵数量增加了40%。PRD策略通过增加渗透调节和弹性调节对耐旱性具有积极影响。因此,在PRD处理中观察到较高的相对含水量和较长的根长。因此,与其他处理相比,PRD处理的生物量水分利用效率显著提高。在PRD处理中,产量水分利用效率分别比FI和SDI提高了26%和61%。结果表明,纳米二氧化钛对干旱胁迫条件下的某些性状具有积极的缓解甚至改善作用。这些结果表明了PRD策略的优越性,该策略改善了生长特性和水分利用效率,提高了可持续性,减少了温室有毒废水对环境的影响以及温室的总体盈利能力。