Desert-adapted plant growth-promoting pseudomonads modulate plant auxin homeostasis and mitigate salinity stress

IF 5.7 2区 生物学 Microbial Biotechnology Pub Date : 2024-12-18 DOI:10.1111/1751-7915.70043
Ramona Marasco, Maria J. Mosqueira, Kholoud A. Seferji, Sarah M. Al Romaih, Grégoire Michoud, Jian Xu, Cristina Bez, Tatiana Castillo Hernandez, Vittorio Venturi, Ikram Blilou, Daniele Daffonchio
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Abstract

By providing adaptive advantages to plants, desert microorganisms are emerging as promising solutions to mitigate the negative and abrupt effects of climate change in agriculture. Among these, pseudomonads, commonly found in soil and in association with plants' root system, have been shown to enhance plant tolerance to salinity and drought, primarily affecting root system architecture in various hosts. However, a comprehensive understanding of how these bacteria affect plant responses at the cellular, physiological and molecular levels is still lacking. In this study, we investigated the effects of two Pseudomonas spp. strains, E102 and E141, which were previously isolated from date palm roots and have demonstrated efficacy in promoting drought tolerance in their hosts. These strains colonize plant roots, influencing root architecture by inhibiting primary root growth while promoting root hair elongation and lateral root formation. Strains E102 and E141 increased auxin levels in Arabidopsis, whereas this effect was diminished in IAA-defective mutant strains, which exhibited reduced IAA production. In all cases, the effectiveness of the bacteria relies on the functioning of the plant auxin response and transport machinery. Notably, such physiological and morphological changes provide an adaptive advantage to the plant, specifically under stress conditions such as salinity. Collectively, this study demonstrates that by leveraging the host's auxin signalling machinery, strains E102 and E141 significantly improve plant resilience to abiotic stresses, positioning them as potential biopromoters/bioprotectors for crop production and ecosystem restoration in alignment with Nature-based Solution approaches.

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荒漠植物促生长假单胞菌调节植物生长素稳态,减轻盐胁迫。
通过为植物提供适应性优势,沙漠微生物正在成为减轻气候变化对农业的负面和突然影响的有希望的解决方案。其中,假单胞菌普遍存在于土壤中,与植物根系有关,已被证明可以增强植物对盐和干旱的耐受性,主要影响各种寄主的根系结构。然而,对这些细菌如何在细胞、生理和分子水平上影响植物反应的全面了解仍然缺乏。在这项研究中,我们研究了两株假单胞菌菌株E102和E141的作用,这两株假单胞菌菌株先前从枣椰树根中分离出来,并证明了它们对宿主抗旱性的促进作用。这些菌株定殖于植物根系,通过抑制初生根生长而影响根系构型,同时促进根毛伸长和侧根形成。菌株E102和E141增加了拟南芥的生长素水平,而IAA缺陷突变株的作用减弱,IAA产量减少。在所有情况下,细菌的有效性依赖于植物生长素反应和运输机制的功能。值得注意的是,这种生理和形态的变化为植物提供了适应优势,特别是在盐度等胁迫条件下。总之,本研究表明,通过利用寄主的生长素信号机制,菌株E102和E141显著提高了植物对非生物胁迫的恢复能力,使它们成为作物生产和生态系统恢复的潜在生物促进剂/生物保护剂,与基于自然的解决方案方法一致。
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来源期刊
Microbial Biotechnology
Microbial Biotechnology Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
11.20
自引率
3.50%
发文量
162
审稿时长
1 months
期刊介绍: Microbial Biotechnology publishes papers of original research reporting significant advances in any aspect of microbial applications, including, but not limited to biotechnologies related to: Green chemistry; Primary metabolites; Food, beverages and supplements; Secondary metabolites and natural products; Pharmaceuticals; Diagnostics; Agriculture; Bioenergy; Biomining, including oil recovery and processing; Bioremediation; Biopolymers, biomaterials; Bionanotechnology; Biosurfactants and bioemulsifiers; Compatible solutes and bioprotectants; Biosensors, monitoring systems, quantitative microbial risk assessment; Technology development; Protein engineering; Functional genomics; Metabolic engineering; Metabolic design; Systems analysis, modelling; Process engineering; Biologically-based analytical methods; Microbially-based strategies in public health; Microbially-based strategies to influence global processes
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