通过包封细菌诱导玉米抗旱性:生理生化适应。

IF 4 2区 生物学 Q1 PLANT SCIENCES
Tiago Lopes, Pedro Costa, Paulo Cardoso, José Almeida E Silva, Etelvina Figueira
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引用次数: 0

摘要

预计干旱将在整个21世纪变得普遍,危及农业生产力和全球粮食安全。为了应对这些挑战,加强水资源管理和增强植物恢复力的新策略势在必行。细菌包封已经成为一种很有前途的方法,提供诸如提高细菌存活率,土壤兼容性和可持续植物生长等好处。本研究评估了干旱环境中细菌的渗透耐受性,并确定了它们在干旱条件下促进植物生长的能力。将这些细菌包封在生物相容的胶囊中,可显著提高玉米植株在干旱胁迫下的生产性能。与未处理的对照相比,经包裹细菌处理的玉米植株根系生物量增加35%,茎部生长增加28%。此外,还观察到显著的生理生化适应,包括光合色素浓度增加45%,渗透物水平提高,这有助于提高干旱胁迫的耐受性。本研究结果表明,包封细菌具有增强玉米抗旱能力的潜力,从而支持玉米在缺水条件下的强劲生长。这种方法提出了一种可持续的策略来提高抗旱性,它可以减少对灌溉的依赖,并在面对日益增加的气候不确定性时保持作物产量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inducing Drought Resilience in Maize Through Encapsulated Bacteria: Physiological and Biochemical Adaptations.

Droughts are projected to become prevalent throughout the 21st century, endangering agricultural productivity and global food security. To address these challenges, novel strategies to enhance water management and augment plant resilience are imperative. Bacterial encapsulation has emerged as a promising approach, offering benefits such as enhanced bacterial survival, soil compatibility, and sustainable plant growth. This study evaluated the osmotolerance of bacteria from arid environments and determined their plant growth-promoting ability in drought conditions. The encapsulation of these bacteria in bio-compatible capsules led to a substantial enhancement in the performance of maize plants under drought stress. Maize plants treated with encapsulated bacteria demonstrated a 35% increase in root biomass and a 28% enhancement in shoot growth compared to untreated controls. Furthermore, significant physiological and biochemical adaptations were observed, including a 45% increase in photosynthetic pigment concentration and higher osmolyte levels, which contributed to improved drought stress tolerance. The findings of this study demonstrate the potential of encapsulated bacteria to enhance maize resilience to drought, thereby supporting robust growth under water-limited conditions. This approach presents a sustainable strategy to improve drought tolerance, and it may reduce irrigation dependency and maintain crop yields in the face of increasing climate uncertainty.

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来源期刊
Plants-Basel
Plants-Basel Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
6.50
自引率
11.10%
发文量
2923
审稿时长
15.4 days
期刊介绍: Plants (ISSN 2223-7747), is an international and multidisciplinary scientific open access journal that covers all key areas of plant science. It publishes review articles, regular research articles, communications, and short notes in the fields of structural, functional and experimental botany. In addition to fundamental disciplines such as morphology, systematics, physiology and ecology of plants, the journal welcomes all types of articles in the field of applied plant science.
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