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Field-Based Stable Isotope Probing Reveals the Identities of Benzoic Acid-Metabolizing Microorganisms and Their In Situ Growth in Agricultural Soil

机译:基于场的稳定同位素探测揭示了农业土壤中苯甲酸代谢微生物的身份及其原位生长

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摘要

We used a combination of stable isotope probing (SIP), gas chromatography-mass spectrometry-based respiration, isolation/cultivation, and quantitative PCR procedures to discover the identity and in situ growth of soil microorganisms that metabolize benzoic acid. We added [13C]benzoic acid or [12C]benzoic acid (100 μg) once, four times, or five times at 2-day intervals to agricultural field plots. After monitoring 13CO2 evolution from the benzoic acid-dosed soil, field soils were harvested and used for nucleic acid extraction and for cultivation of benzoate-degrading bacteria. Exposure of soil to benzoate increased the number of culturable benzoate degraders compared to unamended soil, and exposure to benzoate shifted the dominant culturable benzoate degraders from Pseudomonas species to Burkholderia species. Isopycnic separation of heavy [13C]DNA from the unlabeled fraction allowed terminal restriction fragment length polymorphism (T-RFLP) analyses to confirm that distinct 16S rRNA genes were localized in the heavy fraction. Phylogenetic analysis of sequenced 16S rRNA genes revealed a predominance (15 of 58 clones) of Burkholderia species in the heavy fraction. Burkholderia sp. strain EBA09 shared 99.5% 16S rRNA sequence similarity with a group of clones representing the dominant RFLP pattern, and the T-RFLP fragment for strain EBA09 and a clone from that cluster matched the fragment enriched in the [13C]DNA fraction. Growth of the population represented by EBA09 during the field-dosing experiment was demonstrated by using most-probable-number-PCR and primers targeting EBA09 and the closely related species Burkholderia hospita. Thus, the target population identified by SIP not only actively metabolized benzoic acid but reproduced in the field upon the addition of the substrate.
机译:我们结合使用稳定同位素探测(SIP),基于气相色谱-质谱的呼吸,分离/培养和定量PCR程序来发现代谢苯甲酸的土壤微生物的身份和原位生长。我们在农田田地中每隔两天一次添加[ 13 C]苯甲酸或[ 12 C]苯甲酸(100μg)一次,四次或五次。在监测了从苯甲酸施用的土壤中释放出 13 CO2后,收获了田间土壤,并将其用于核酸提取和降解苯甲酸盐的细菌的培养。与未经改良的土壤相比,土壤暴露于苯甲酸盐会增加可培养的苯甲酸盐降解剂的数量,暴露于苯甲酸盐会导致主要的可培养苯甲酸盐降解剂从假单胞菌属转移到伯克霍尔德菌属。从未标记级分等重分离[ 13 C] DNA进行末端限制性片段长度多态性(T-RFLP)分析,以确认不同的16S rRNA基因位于该重级分中。测序的16S rRNA基因的系统进化分析表明,伯克霍尔德氏菌物种占优势(占58个克隆中的15个)。伯克霍尔德氏菌EBA09菌株与一组代表主要RFLP模式的克隆具有99.5%的16S rRNA序列相似性,EBA09菌株的T-RFLP片段和该簇的克隆与富含[ 13 C] DNA部分。通过使用最可能数量的PCR和靶向EBA09的引物以及与之密切相关的Burkholderia hospita物种,证明了在田间给药实验中以EBA09代表的种群的增长。因此,通过SIP鉴定的目标人群不仅可以主动代谢苯甲酸,而且在添加底物后可在野外繁殖。

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