Metabolites Profiling of Humid Tropic Simulated Bungor Soil Under Biofertilizer Application

IF 3.4 3区 农林科学 Q2 ENVIRONMENTAL SCIENCES
Aaronn Avit Ajeng, Goh Suk Shim, Rosazlin Abdullah, Tau Chuan Ling, Kuan Shiong Khoo
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引用次数: 0

Abstract

Purpose

Biofertilizer application in the agriculture industries is deemed sustainable in the long run given its ability to restore fertility of soil and increase crops productivity through several direct and indirect mechanisms. However, the dissolved fraction (DOM), which is made up of tiny molecules of plant and microbial origin produced by lysed cells and released metabolites as influenced directly through biofertilizer amendment is unknown.

Methods

An untargeted metabolomics profiling was conducted via an in vitro rhizospheric Bungor soil series incubation with IBG Biofertilizer from IBG Manufacturing Sdn Bhd. In this study, a comparative analysis between Ultisols samples inoculated with IBG biofertilizer and control samples was conducted under simulated humid tropic conditions.

Results

18 mass-to-charge ratio (m/z) values with VIP (Variable Importance in Projection) scores exceeding 1 in the IBG biofertilizer-inoculated Ultisol. The annotated metabolites primarily consisted of endogenous compounds, including amino acids, organic acids, nucleic acids, fatty acids, and amines. Notably, a signaling compound, homoserine lactone (m/z 270), exhibited the highest fold changes in response to IBG biofertilizer inoculation on the simulated Ultisol. Furthermore, key metabolic pathways such as Glycerophospholipid metabolism, Glycine, serine, and threonine metabolism, Cysteine and methionine metabolism, and Alanine, aspartate, and glutamate metabolism were notably affected by IBG biofertilizer inoculation on the simulated soil model.

Conclusions

These findings emphasized the metabolic responses induced by IBG biofertilizer in Ultisols under the simulated humid tropic conditions., which suggests that biofertilizers application have some significant changes on soil metabolites that overall soil productivity could be affected by these potential biomarkers. Understanding these metabolic shifts not only enhances crop productivity but also addresses broader questions of soil health and ecosystem sustainability in the face of climate change and agricultural intensification.

Abstract Image

应用生物肥料的湿热带模拟邦戈土壤代谢物谱分析
目的 由于生物肥料能够通过多种直接和间接机制恢复土壤肥力并提高作物产量,因此在农业领域应用生物肥料被认为具有长期可持续性。然而,由植物和微生物裂解细胞产生的微小分子组成的溶解部分(DOM)以及通过生物肥料施用直接影响的释放代谢物尚不清楚。方法通过使用 IBG Manufacturing Sdn Bhd 公司生产的 IBG 生物肥料进行离体根瘤菌 Bungor 土壤系列培养,进行非目标代谢组学分析。这项研究在模拟潮湿的热带条件下对接种了 IBG 生物肥料的 Ultisols 样品和对照样品进行了比较分析。注释的代谢物主要是内源化合物,包括氨基酸、有机酸、核酸、脂肪酸和胺。值得注意的是,一种信号化合物--高丝氨酸内酯(m/z 270)在模拟 Ultisol 上对 IBG 生物肥料接种的反应中表现出最高的折叠变化。此外,在模拟土壤模型中,甘油磷脂代谢、甘氨酸、丝氨酸和苏氨酸代谢、半胱氨酸和蛋氨酸代谢以及丙氨酸、天门冬氨酸和谷氨酸代谢等关键代谢途径受到 IBG 生物肥料接种的显著影响、这表明施用生物肥料会对土壤代谢物产生一些显著的变化,而这些潜在的生物标记物可能会影响土壤的整体生产力。了解这些新陈代谢的变化不仅能提高作物产量,还能解决在气候变化和农业集约化过程中更广泛的土壤健康和生态系统可持续性问题。
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来源期刊
Journal of Soil Science and Plant Nutrition
Journal of Soil Science and Plant Nutrition Agricultural and Biological Sciences-Soil Science
CiteScore
5.90
自引率
10.30%
发文量
331
审稿时长
9 months
期刊介绍: The Journal of Soil Science and Plant Nutrition is an international, peer reviewed journal devoted to publishing original research findings in the areas of soil science, plant nutrition, agriculture and environmental science. Soil sciences submissions may cover physics, chemistry, biology, microbiology, mineralogy, ecology, pedology, soil classification and amelioration. Plant nutrition and agriculture submissions may include plant production, physiology and metabolism of plants, plant ecology, diversity and sustainability of agricultural systems, organic and inorganic fertilization in relation to their impact on yields, quality of plants and ecological systems, and agroecosystems studies. Submissions covering soil degradation, environmental pollution, nature conservation, and environmental protection are also welcome. The journal considers for publication original research articles, technical notes, short communication, and reviews (both voluntary and by invitation), and letters to the editor.
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