The combination of a microbial and a non-microbial biostimulant increases yield in lettuce (Lactuca sativa) under salt stress conditions by up-regulating cytokinin biosynthesis.

IF 9.3 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Patricia Benito, Marina Celdrán, Javier Bellón, Vicente Arbona, Miguel González-Guzmán, Rosa Porcel, Lynne Yenush, José M Mulet
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引用次数: 0

Abstract

Salinization poses a significant challenge in agriculture, exacerbated by anthropogenic global warming. Biostimulants, derived from living microorganisms or natural extracts, have emerged as valuable tools for conventional and organic agriculture. However, our understanding of the molecular mechanisms underlying the effects of biostimulants is very limited, especially in crops under real cultivation conditions. In this study, we adopted an integrative approach to investigate the effectiveness of the combined application of plant growth-promoting bacterium (Bacillus megaterium strain BM08) and a non-microbial biostimulant under control conditions (normal watering) and salt stress. After confirming the yield increase under both conditions, we investigated the molecular mechanisms underlying the observed effect by measuring a number of physiological parameters (i.e., lipid peroxidation, antioxidants, chlorophylls, total phenolics and phytohormone content), as well as RNA sequencing and primary metabolite analyses. Our findings reveal that the combined effect of the microbial and non-microbial biostimulants led to a decrease in the antioxidant response and an up-regulation of genes involved in cytokinin biosynthesis under salt stress conditions. This, in turn, resulted in a higher concentration of the bioactive cytokinin, isopentenyladenosine, in roots and leaves and an increase in γ-aminobutyric acid, a non-proteic amino acid related to abiotic stress responses. In addition, we observed a decrease in malic acid, along with an abscisic acid (ABA)-independent up-regulation of SR-kinases, a family of protein kinases associated with abiotic stress responses. Furthermore, we observed that the single application of the non-microbial biostimulant triggers an ABA-dependent response under salt stress; however, when combined with the microbial biostimulant, it potentiated the mechanisms triggered by the BM08 bacterial strain. This comprehensive investigation shows that the combination of two biostimulants is able to elicit a cytokinin-dependent response that may explain the observed yield increase under salt stress conditions.

在盐胁迫条件下,将一种微生物和一种非微生物生物刺激剂结合使用,可通过上调细胞分裂素的生物合成提高莴苣(Lactuca sativa)的产量。
盐碱化是农业面临的一个重大挑战,而全球人为变暖又加剧了盐碱化。从活微生物或天然提取物中提取的生物刺激剂已成为传统农业和有机农业的重要工具。然而,我们对生物刺激素作用的分子机制了解非常有限,尤其是在实际种植条件下对作物的影响。在本研究中,我们采用综合方法研究了在对照条件(正常浇水)和盐胁迫条件下联合应用植物生长促进菌(巨型芽孢杆菌菌株 BM08)和非微生物生物刺激剂的效果。在确认了两种条件下的增产效果后,我们通过测量一系列生理参数(即脂质过氧化、抗氧化剂、叶绿素、总酚和植物激素含量)以及 RNA 测序和初级代谢物分析,研究了观察到的效果的分子机制。我们的研究结果表明,在盐胁迫条件下,微生物和非微生物生物刺激剂的共同作用导致抗氧化反应降低,参与细胞分裂素生物合成的基因上调。这反过来又导致根和叶中生物活性细胞分裂素--异戊烯基腺苷--的浓度升高,γ-氨基丁酸--一种与非生物胁迫反应相关的非保护性氨基酸--的浓度升高。此外,我们还观察到苹果酸的减少,以及脱落酸(ABA)不依赖于 SR 激酶的上调,SR 激酶是与非生物胁迫反应相关的蛋白激酶家族。此外,我们还观察到,在盐胁迫下,单一施用非微生物生物刺激剂会引发一种依赖于 ABA 的反应;但当与微生物生物刺激剂结合使用时,则会增强 BM08 菌株引发的机制。这项综合研究表明,两种生物刺激剂的结合能够引起细胞分裂素依赖性反应,这可能是在盐胁迫条件下观察到的增产的原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Integrative Plant Biology
Journal of Integrative Plant Biology 生物-生化与分子生物学
CiteScore
18.00
自引率
5.30%
发文量
220
审稿时长
3 months
期刊介绍: Journal of Integrative Plant Biology is a leading academic journal reporting on the latest discoveries in plant biology.Enjoy the latest news and developments in the field, understand new and improved methods and research tools, and explore basic biological questions through reproducible experimental design, using genetic, biochemical, cell and molecular biological methods, and statistical analyses.
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