Influence of light quality on the profiling of metabolites and the status of Lactobacillus community in the phyllosphere of hydroponically grown ginseng

IF 5.2 2区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY
Nooruddin Bin Sadiq, Ji-Eun Lee, Muhammad Hamayun, Seda Nur Kabadayı, Na-Yun Park, Bokyung Lee, Ho-Youn Kim
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Abstract

Background

The microbial community within the phyllosphere plays a critical role in plant health and growth by facilitating nutrient uptake, inducing resistance and enhancing tolrance to stress. Environmental factors, such as light intensity and quality, are known to influence the composition and function of phyllosphere microbiota. In hydroponic systems, these interactions are particularly relevant, as they can significantly affect plant growth and yield. Based on the potential of controlled environments to shape both plant and microbial responses, the impact of different light conditions on the phyllosphere microbiota is crucial for plant health and productivity.

Methods

This study evaluated two Korean ginseng varieties exposed to different LED light treatments in a hydroponic system. Metabolite profiling and ginsenoside content were analysed, while bacterial abundance in the phyllosphere was quantified. Detailed insights into the microbial community were obtained through 16S rRNA sequencing. A multivariate analysis was performed to distinguish the effects of different LED treatments of the phyllosphere microbiota.

Results

Carbohydrates were most abundant in treatments with flouresence light (FL), blue light (BL), and red light (RD), while treatments with dark (DK), infrared (IR), and ultraviolet (UV) light exhibited higher levels of amino acids and organic acids. Minor ginsenoside content was significantly higher in Gumpoong (V2) variety compared to the Yunpoong (V1). Light intensity had a direct impact on the composition of the phyllosphere microbiota, with specific microorganisms being associated with each ginseng variety under different LED light exposures. Organic acids and amino acids positively influenced the abundance of Proteobacteria, Actinobacteria, Chloroflexi, and Ni-trospirae, while Firmicutes, Acidobacteria, Planctomycetes, and Cyanobacteria correlated significantly with carbohydrate levels. Proteobacteria remained stable under IR treatment, constituting over 80% in V2 and 60% in V1, while UV light promoted microbial stability in V2 and fostered more diverse ecosystems in V1, both characterized by richness in organic acids and amino acids. Lactiplantibacillus plantarum was the only lactic acid bacterium detected in both varieties, with higher abundance in V2, indicating its potential ubiquity across different ginseng types.

Conclusions

Current findings showed that LED light treatments significantly influenced the metabolite profiles and phyllosphere microbiota of hydroponically grown Korean ginseng. Specific light conditions, such as blue, red, and infrared, promoted distinct microbial communities and enhanced the production of key metabolites, including carbohydrates, amino acids, and ginsenosides. The presence L. plantarum, highlights the potential of ginseng as a functional food with probiotic properties. This study provides valuable insights into optimizing ginseng cultivation for both enhanced metabolite production and microbiome health.

Graphical Abstract

光照质量对水培人参叶圈代谢产物及乳酸菌群落状况的影响
根层内的微生物群落通过促进养分吸收、诱导抗性和增强对胁迫的耐受性,在植物的健康和生长中起着至关重要的作用。众所周知,环境因素,如光强度和质量,会影响层球微生物群的组成和功能。在水培系统中,这些相互作用特别相关,因为它们可以显著影响植物的生长和产量。基于受控环境对植物和微生物反应的潜在影响,不同光照条件对层层微生物群的影响对植物健康和生产力至关重要。方法对两个红参品种在不同LED光处理下进行水培试验。分析了代谢物谱和人参皂苷含量,同时定量了层球中的细菌丰度。通过16S rRNA测序获得了对微生物群落的详细了解。采用多变量分析来区分不同LED处理对层球菌群的影响。结果荧光光(FL)、蓝光(BL)和红光(RD)处理中碳水化合物含量最高,暗光(DK)、红外(IR)和紫外线(UV)处理中氨基酸和有机酸含量较高。锦丰(V2)的微量人参皂苷含量显著高于云丰(V1)。光照强度对层球微生物群的组成有直接影响,在不同LED光照下,每个人参品种都有特定的微生物。有机酸和氨基酸正影响变形菌门、放线菌门、绿藻门和氮螺旋体门的丰度,而厚壁菌门、酸性菌门、浮游菌门和蓝藻门的丰度与碳水化合物水平显著相关。红外处理下变形菌群保持稳定,在V2中占80%以上,在V1中占60%以上,而紫外线促进了V2中微生物的稳定性,并在V1中培养了更多样化的生态系统,其特点是有机酸和氨基酸丰富。植物乳杆菌是两个品种中唯一检测到的乳酸菌,在V2中丰度较高,表明其在不同人参类型中可能普遍存在。结论LED光处理对水培红参代谢产物谱和层球微生物群有显著影响。特定的光照条件,如蓝色、红色和红外线,促进了不同的微生物群落,并促进了关键代谢物的产生,包括碳水化合物、氨基酸和人参皂苷。植物乳杆菌的存在,凸显了人参作为一种具有益生菌特性的功能性食品的潜力。该研究为优化人参培养提供了有价值的见解,以提高代谢物的产生和微生物群的健康。图形抽象
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来源期刊
Chemical and Biological Technologies in Agriculture
Chemical and Biological Technologies in Agriculture Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.80
自引率
3.00%
发文量
83
审稿时长
15 weeks
期刊介绍: Chemical and Biological Technologies in Agriculture is an international, interdisciplinary, peer-reviewed forum for the advancement and application to all fields of agriculture of modern chemical, biochemical and molecular technologies. The scope of this journal includes chemical and biochemical processes aimed to increase sustainable agricultural and food production, the evaluation of quality and origin of raw primary products and their transformation into foods and chemicals, as well as environmental monitoring and remediation. Of special interest are the effects of chemical and biochemical technologies, also at the nano and supramolecular scale, on the relationships between soil, plants, microorganisms and their environment, with the help of modern bioinformatics. Another special focus is the use of modern bioorganic and biological chemistry to develop new technologies for plant nutrition and bio-stimulation, advancement of biorefineries from biomasses, safe and traceable food products, carbon storage in soil and plants and restoration of contaminated soils to agriculture. This journal presents the first opportunity to bring together researchers from a wide number of disciplines within the agricultural chemical and biological sciences, from both industry and academia. The principle aim of Chemical and Biological Technologies in Agriculture is to allow the exchange of the most advanced chemical and biochemical knowledge to develop technologies which address one of the most pressing challenges of our times - sustaining a growing world population. Chemical and Biological Technologies in Agriculture publishes original research articles, short letters and invited reviews. Articles from scientists in industry, academia as well as private research institutes, non-governmental and environmental organizations are encouraged.
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