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Identification of Heavy Smokers through Their Intestinal Microbiota by DataMining Analysis

机译:通过数据确定重型吸烟者的肠道菌群挖掘分析

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摘要

The intestinal microbiota compositions of 92 Japanese men were identified following consumption of identical meals for 3 days, and collected feces were analyzed through terminal restriction fragment length polymorphism. The obtained operational taxonomic units and smoking habits of subjects were analyzed by a data mining software. The constructed decision tree was able to identify explicitly the groups of smokers and nonsmokers. In particular, 4 smokers, who smoked 20 cigarettes/day, i.e., heavy smokers, were gathered in the same group of the decision tree and were clearly identified. Related operational taxonomic unit were traced to understand the species of bacteria, but all were found to be uncultured bacteria.
机译:食用三餐相同的食物后,确定了92名日本男性的肠道菌群组成,并通过末端限制性片段长度多态性分析了收集的粪便。通过数据挖掘软件分析获得的受试者的操作分类单位和吸烟习惯。构造的决策树能够明确识别吸烟者和不吸烟者的群体。尤其是,每天抽20支香烟的4名吸烟者,即重度吸烟者,被聚集在决策树的同一组中,并被清楚地识别出来。追踪了相关的操作分类单位以了解细菌的种类,但是发现它们都是未经培养的细菌。

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