首页> 美国卫生研究院文献>Pathogens >An Endophytic Fungi-Based Biostimulant Modulates Volatile and Non-Volatile Secondary Metabolites and Yield of Greenhouse Basil (Ocimum basilicum L.) through Variable Mechanisms Dependent on Salinity Stress Level
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An Endophytic Fungi-Based Biostimulant Modulates Volatile and Non-Volatile Secondary Metabolites and Yield of Greenhouse Basil (Ocimum basilicum L.) through Variable Mechanisms Dependent on Salinity Stress Level

机译:基于内生真菌的生物染色剂通过依赖于盐度应力水平的可变机制调节挥发性和非挥发性的二次代谢产物和温室罗勒(OCIMAL Basilicum L.)的产率

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摘要

Salinity in water and soil is one of the major environmental factors limiting the productivity of agronomic and horticultural crops. In basil (Ocimum basilicum L., Lamiaceae) and other Ocimum species, information on the plant response to mild salinity levels, often induced by the irrigation or fertigation systems, is scarce. In the present work, we tested the effectiveness of a microbial-based biostimulant containing two strains of arbuscular mycorrhiza fungi (AMF) and Trichoderma koningii in sustaining greenhouse basil yield traits, subjected to two mild salinity stresses (25 mM [low] and 50 mM [high] modulated by augmenting the fertigation osmotic potential with NaCl) compared to a non-stressed control. The impact of salinity stress was further appraised in terms of plant physiology, morphological ontogenesis and composition in polyphenols and volatile organic compounds (VOC). As expected, increasing the salinity of the solution strongly depressed the plant yield, nutrient uptake and concentration, reduced photosynthetic activity and leaf water potential, increased the Na and Cl and induced the accumulation of polyphenols. In addition, it decreased the concentration of Eucalyptol and β-Linalool, two of its main essential oil constituents. Irrespective of the salinity stress level, the multispecies inoculum strongly benefited plant growth, leaf number and area, and the accumulation of Ca, Mg, B, p-coumaric and chicoric acids, while it reduced nitrate and Cl concentrations in the shoots and affected the concentration of some minor VOC constituents. The benefits derived from the inoculum in term of yield and quality harnessed different mechanisms depending on the degree of stress. under low-stress conditions, the inoculum directly stimulated the photosynthetic activity after an increase of the Fe and Mn availability for the plants and induced the accumulation of caffeic and rosmarinic acids. under high stress conditions, the inoculum mostly acted directly on the sequestration of Na and the increase of P availability for the plant, moreover it stimulated the accumulation of polyphenols, especially of ferulic and chicoric acids and quercetin-rutinoside in the shoots. Notably, the inoculum did not affect the VOC composition, thus suggesting that its activity did not interact with the essential oil biosynthesis. These results clearly indicate that beneficial inocula constitute a valuable tool for sustaining yield and improving or sustaining quality under suboptimal water quality conditions imposing low salinity stress on horticultural crops.
机译:水和土壤中的盐度是限制农艺和园艺作物生产率的主要环境因素之一。在罗勒(OCimum Basilicum L.,Lamiaceae)和其他目代,有关灌溉或灌溉系统通常诱导的植物对温和盐度水平的信息的信息是稀缺的。在本作工作中,我们测试了含有两种蛋白酶菌毒素真菌(AMF)和Trichoderma Koningii的微生物的生物刺激剂在维持温室罗勒产量特征中的有效性,经受两个温和的盐度应力(25mm [低]和50毫米与非胁迫对照相比,通过增强培养渗透渗透渗透渗透渗透渗透渗透渗透渗透渗透渗透渗透压。在多酚和挥发性有机化合物(VOC)中,盐度应力的影响进一步评估了植物生理学,形态学梭菌和组合物(VOC)。如预期的那样,增加溶液的盐度强烈抑制了植物产量,营养吸收和浓度,降低光合活性和叶水势,增加了Na和Cl并诱导了多酚的积累。此外,它降低了桉树和β-LINALOOL的浓度,其两种主要精油成分。无论盐度应力水平如何,多数造物都强烈受益,植物生长,叶片数和面积,以及Ca,Mg,B,P-香豆和芳酸的积累,而其在芽中降低硝酸盐和Cl浓度并影响浓度的一些次要VOC成分。根据屈服和质量的术语源自接种物的益处根据压力程度利用不同的机制。在低应力条件下,接种物在植物的Fe和Mn可用性增加后直接刺激光合活性,并诱导咖啡酸和甘氨酸的积累。在高胁迫条件下,接种物主要直接作用于Na的封存以及植物的P可用性的增加,并且它刺激了多酚的积累,尤其是在芽中的鸟类和氟菊酯和槲皮素 - 罗霉素。值得注意的是,接种物不会影响VOC组合物,因此表明其活性没有与精油生物合成相互作用。这些结果清楚地表明有益的Inocula构成了在诸着水质条件下施加低盐度胁迫下的产量和改善或维持质量的宝贵工具。

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