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Learning machine approach reveals microbial signatures of diet and sex in dog

机译:学习机方法揭示了狗的饮食和性别的微生物特征

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The characterization of the microbial population of many niches of the organism, as the gastrointestinal tract, is now possible thanks to the use of high-throughput DNA sequencing technique. Several studies in the companion animals field already investigated faecal microbiome in healthy or affected subjects, although the methodologies used in the different laboratories and the limited number of animals recruited in each experiment does not allow a straight comparison among published results. In the present study, we report data collected from several in house researches carried out in healthy dogs, with the aim to seek for a variability of microbial taxa in the faeces, caused by factors such as diet and sex. The database contains 340 samples from 132 dogs, collected serially during dietary intervention studies. The procedure of samples collection, storage, DNA extraction and sequencing, bioinformatic and statistical analysis followed a standardized pipeline. Microbial profiles of faecal samples have been analyzed applying dimensional reduction discriminant analysis followed by random forest analysis to the relative abundances of genera in the feces as variables. The results supported the responsiveness of microbiota at a genera taxonomic level to dietary factor and allowed to cluster dogs according this factor with high accuracy. Also sex factor clustered dogs, with castrated males and spayed females forming a separated group in comparison to intact dogs, strengthening the hypothesis of a bidirectional interaction between microbiota and endocrine status of the host. The findings of the present analysis are promising for a better comprehension of the mechanisms that regulate the connection of the microorganisms living the gastrointestinal tract with the diet and the host. This preliminary study deserves further investigation for the identification of the factors affecting faecal microbiome in dogs.
机译:由于使用高通量DNA测序技术,现在可以表征许多生物体的微生物种群的表征,作为胃肠道。伴侣动物领域的几项研究已经在健康或受影响的受试者中研究了粪便微生物组,尽管在不同实验室中使用的方法和每个实验中招募的有限的动物不允许在公开的结果中直接比较。在本研究中,我们报告了在健康狗的房屋研究中收集的数据,目的是寻求粪便中的微生物分类群的可变性,例如饮食和性别等因素。该数据库包含来自132只狗的340个样本,在饮食干预研究中系列序列收集。样品收集,储存,DNA提取和测序,生物信息和统计分析的过程遵循标准化管道。已经分析了粪便样品的微生物分布,然后施加尺寸减少判别分析,然后进行随机林分析对粪便中的永久性的相对丰富作为变量。结果支持将Microbiota对膳食因子的核心子群的反应能力,并根据这一因素允许捕获犬,高精度。还有性因子聚集犬,与阉割的男性和穿过的女性形成分离的组,与完整的狗相比,加强微生物群和宿主内分泌状态之间的双向相互作用的假设。目前分析的发现很有希望更好地理解调节微生物与饮食和宿主患有胃肠道的微生物的连接的机制。这项初步研究值得进一步调查鉴定影响狗粪便微生物组的因素。

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