Abdelmoneim Taghreed Khaled, Mohamed Mahmoud S M, Abdelhamid Ismail Abdelshafy, Wahdan Sara Fareed Mohamed, Atia Mohamed A M
Genome Mapping Department, Agricultural Genetic Engineering Research Institute (AGERI), Agricultural Research Center (ARC), Giza, Egypt.
Department of Chemistry, Faculty of Science, Cairo University, Giza, Egypt.
Front Microbiol. 2023 Jan 12;13:1095045. doi: 10.3389/fmicb.2022.1095045. eCollection 2022.
The structure and dynamic of soil bacterial community play a crucial role in soil health and plant productivity. However, there is a gap in studying the un-/or reclaimed soil bacteriome and its impact on future plant performance. The 16S metagenomic analysis is expensive and utilize sophisticated pipelines, making it unfavorable for researchers. Here, we aim to perform (1) and validation of taxon-specific qPCR primer-panel in the detection of the beneficial soil bacterial community, to ensure its specificity and precision, and (2) multidimensional analysis of three soils/locations in Egypt ('Q', 'B', and 'G' soils) in terms of their physicochemical properties, bacteriome composition, and wheat productivity as a model crop. The results disclosed that almost all tested primers showed high specificity and precision toward the target taxa. Among 17 measured soil properties, the electrical conductivity (EC) value (up to 5 dS/m) of 'Q' soil provided an efficient indicator for soil health among the tested soils. The 16S NGS analysis showed that the soil bacteriome significantly drives future plant performance, especially the abundance of Proteobacteria and Actinobacteria as key indicators. The functional prediction analysis results disclosed a high percentage of N-fixing bacterial taxa in 'Q' soil compared to other soils, which reflects their positive impact on wheat productivity. The taxon-specific qPCR primer-panel results revealed a precise quantification of the targeted taxa compared to the 16S NGS analysis. Moreover, 12 agro-morphological parameters were determined for grown wheat plants, and their results showed a high yield in the 'Q' soil compared to other soils; this could be attributed to the increased abundance of Proteobacteria and Actinobacteria, high enrichment in nutrients (N and K), or increased EC/nutrient availability. Ultimately, the potential use of a taxon-specific qPCR primer-panel as an alternative approach to NGS provides a cheaper, user-friendly setup with high accuracy.
土壤细菌群落的结构和动态对土壤健康和植物生产力起着至关重要的作用。然而,在研究未开垦/开垦土壤的细菌群落及其对未来植物性能的影响方面仍存在差距。16S宏基因组分析成本高昂且需要使用复杂的流程,这对研究人员来说并不有利。在此,我们旨在:(1)对用于检测有益土壤细菌群落的分类群特异性qPCR引物组进行性能评估和验证,以确保其特异性和准确性;(2)对埃及的三种土壤/地点(“Q”、“B”和“G”土壤)在物理化学性质、细菌群落组成以及作为模式作物的小麦生产力方面进行多维度分析。结果表明,几乎所有测试引物对目标分类群都显示出高特异性和准确性。在17种测量的土壤性质中,“Q”土壤的电导率(EC)值(高达5 dS/m)是测试土壤中土壤健康的有效指标。16S NGS分析表明,土壤细菌群落显著影响未来植物性能,尤其是作为关键指标的变形菌门和放线菌门的丰度。功能预测分析结果显示,与其他土壤相比,“Q”土壤中固氮细菌分类群的比例较高,这反映了它们对小麦生产力的积极影响。与16S NGS分析相比,分类群特异性qPCR引物组的结果显示对目标分类群的定量更准确。此外,还测定了种植小麦植株的12个农艺形态参数,结果表明与其他土壤相比,“Q”土壤中的小麦产量更高;这可能归因于变形菌门和放线菌门丰度的增加、养分(氮和钾)的高富集或电导率/养分有效性的提高。最终,分类群特异性qPCR引物组作为NGS的替代方法的潜在应用提供了一种更便宜、用户友好且准确性高的设置。