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Soil microbial community structure and aflatoxin contamination of peanuts.

机译:土壤微生物群落结构和花生中的黄曲霉毒素污染。

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摘要

Potential management of the soilborne Aspergillus flavus and A. parasiticus fungi, a food contaminate that causes human and animal health problem, may be possible through maintaining an appropriate soil microbial diversity. The overall approach is to suppress aflatoxin producing fungi in soils through better understanding and manipulation of soil microbial populations. The objectives of investigation are (1) To develop bacterial profiles of selected soil samples from different rotational sequences: continuous peanut, continuous bahiagrass, peanut-cotton and peanut-corn; (2) To develop fungal community profiles of peanut soils and determine their relationship with A. flavus populations; and (3) To determine the effect of different cropping sequences on peanut aflatoxin contamination. The methodology included (1) determining the soil bacterial and fungal communities of different peanut cropping sequences utilizing a high resolution DNA fingerprinting technique, Automated Ribosomal Intergenic Spacer Analysis (ARISA); (2) 16S rRNA gene cloning and sequencing of bacteria populations from peanut soils; (3) the enumeration of A. flavus population levels and estimating the minimum detectable limits of these pathogens in soils; and (4) evaluating the aflatoxin content in peanut pod samples from different cropping sequences. The results indicated that cropping sequences and time of soil sampling have considerable effect on soil microbial community structure. Microbial diversity was higher in peanut soils with bahiagrass and cotton rotations over continuous peanuts. Rarefaction curves of 16S rRNA gene sequence data for all cropping sequences further showed bacterial diversity at species and genus level. The predominant bacterial divisions included Proteobacteria, Acidobacteria, Firmicutes, Bacteroidetes and Actinomycetes. The Proteobacteria populations have significant negative correlation with Firmicutes and are positively correlated with Gemmatimonadetes. The Actinomycetes division showed significant negative correlation with Verrucomicrobia. These relationships may indicate competition among bacterial species in agronomic soils. The minimum threshold limit at which A. flavus can be detected in peanut soils directly from soil genomic DNA with A. flavus specific primers was found to be 2.6 X 106 CFU g-1. Pod aflatoxin content was found to be less in pod samples when peanuts are rotated with bahiagrass and cotton over continuous peanuts. Our research results suggest these interactions between soil microbial communities in peanut soils may be manageable thus for suppressing peanut aflatoxin problem through different cropping sequences.
机译:通过保持适当的土壤微生物多样性,有可能对土壤传播的黄曲霉和寄生曲霉(一种引起人和动物健康问题的食物污染物)进行处理。总体方法是通过更好地了解和操纵土壤微生物种群来抑制土壤中产生黄曲霉毒素的真菌。研究的目的是:(1)从不同的轮作顺序中选择土壤样品的细菌概况:连续花生,连续Bahiagrass,花生棉和花生玉米。 (2)建立花生土壤的真菌群落特征,并确定它们与黄曲霉种群的关系; (3)确定不同种植顺序对花生黄曲霉毒素污染的影响。该方法包括(1)利用高分辨率DNA指纹技术,自动核糖体基因间间隔分析(ARISA)来确定不同花生种植顺序的土壤细菌和真菌群落; (2)花生土壤细菌种群的16S rRNA基因克隆与测序; (3)列举黄曲霉种群数量,并估计土壤中这些病原体的最低可检测限; (4)评估不同种植顺序的花生荚样品中的黄曲霉毒素含量。结果表明,采样顺序和采样时间对土壤微生物群落结构具有重要影响。花生的土壤微生物具有较高的生物多样性,并且在连续的花生上有Bahiagrass和棉花轮作。所有种植序列的16S rRNA基因序列数据的反折射曲线进一步显示了细菌在物种和属水平上的多样性。主要的细菌分类包括变形杆菌,酸性细菌,硬毛,拟杆菌和放线菌。变形杆菌的种群与Firmicutes有显着的负相关,与Gemmatimonadetes呈正相关。放线菌科与Verrucomicrobia呈显着负相关。这些关系可能表明农艺土壤中细菌物种之间存在竞争。发现利用花生曲霉特异性引物直接从土壤基因组DNA中检测到花生土壤中的金黄曲霉的最小阈值为2.6 X 106 CFU g-1。当花生与面包渣和棉花一起在连续花生上旋转时,豆荚中的黄曲霉毒素含量降低。我们的研究结果表明,花生土壤中土壤微生物群落之间的相互作用可能是可控的,因此可以通过不同的种植顺序来抑制花生黄曲霉毒素问题。

著录项

  • 作者

    Sudini, Hari Kishan.;

  • 作者单位

    Auburn University.;

  • 授予单位 Auburn University.;
  • 学科 Biology Microbiology.;Agriculture Soil Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:43

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