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首页> 外文期刊>mSphere >Subtle Variations in Dietary-Fiber Fine Structure Differentially Influence the Composition and Metabolic Function of Gut Microbiota
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Subtle Variations in Dietary-Fiber Fine Structure Differentially Influence the Composition and Metabolic Function of Gut Microbiota

机译:膳食纤维细结构的微妙变化差异地影响肠道微生物的组成和代谢功能

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The chemical structures of soluble fiber carbohydrates vary from source to source due to numerous possible linkage configurations among monomers. However, it has not been elucidated whether subtle structural variations might impact soluble fiber fermentation by colonic microbiota. In this study, we tested the hypothesis that subtle structural variations in a soluble polysaccharide govern the community structure and metabolic output of fermenting microbiota. We performed in vitro fecal fermentation studies using arabinoxylans (AXs) from different classes of wheat (hard red spring [AX HRS ], hard red winter [AX HRW ], and spring red winter [AX SRW ]) with identical initial microbiota. Carbohydrate analyses revealed that AX SRW was characterized by a significantly shorter backbone and increased branching compared with those of the hard varieties. Amplicon sequencing demonstrated that fermentation of AX SRW resulted in a distinct community structure of significantly higher richness and evenness than those of hard-AX-fermenting cultures. AX SRW favored OTUs within Bacteroides , whereas AX HRW and AX HRS favored Prevotella . Accordingly, metabolic output varied between hard and soft varieties; higher propionate production was observed with AX SRW and higher butyrate and acetate with AX HRW and AX HRS . This study showed that subtle changes in the structure of a dietary fiber may strongly influence the composition and function of colonic microbiota, further suggesting that physiological functions of dietary fibers are highly structure dependent. Thus, studies focusing on interactions among dietary fiber, gut microbiota, and health outcomes should better characterize the structures of the carbohydrates employed. IMPORTANCE Diet, especially with respect to consumption of dietary fibers, is well recognized as one of the most important factors shaping the colonic microbiota composition. Accordingly, many studies have been conducted to explore dietary fiber types that could predictably manipulate the colonic microbiota for improved health. However, the majority of these studies underappreciate the vastness of fiber structures in terms of their microbial utilization and omit detailed carbohydrate structural analysis. In some cases, this causes conflicting results to arise between studies using (theoretically) the same fibers. In this investigation, by performing in vitro fecal fermentation studies using bran arabinoxylans obtained from different classes of wheat, we showed that even subtle changes in the structure of a dietary fiber result in divergent microbial communities and metabolic outputs. This underscores the need for much higher structural resolution in studies investigating interactions of dietary fibers with gut microbiota, both in vitro and in vivo .
机译:由于单体中的许多可能的连杆配置,可溶性纤维碳水化合物的化学结构因源代码而异。然而,尚未阐明细微结构变异是否可能会通过结肠微生物菌可能影响可溶性纤维发酵。在这项研究中,我们测试了可溶性多糖的细微结构变化的假设控制了发酵微生物的群落结构和代谢产量。我们使用来自不同类别的初始小麦的阿拉伯毒蛇(斧头)进行体外粪便发酵研究(硬红色冬季[轴HRW]和春天的红色冬季[轴SRW],具有相同的初始微生物。碳水化合物分析显示,斧头SRW的特征在于与硬品种的骨架相比显着较短的骨架和增加的分支。扩增子测序表明,斧头SRW的发酵导致了明显较高的丰富性和均匀性的群落结构明显高于硬轴发酵培养物。 AX SRW有利于杆状体内的OTU,而AX HRW和AX HRS青睐PREVOTALLA。因此,硬质和软品种之间的代谢输出变化;用AX SRW和高丁酸丁酸酯和醋酸乙酸乙酸和轴HRS观察到更高的丙酸盐产生。该研究表明,膳食纤维结构的微妙变化可能强烈影响结肠微生物群的组成和功能,进一步表明膳食纤维的生理功能依赖性高度结构。因此,重点研究饮食纤维,肠道微生物菌和健康结果之间的相互作用应更好地表征所用碳水化合物的结构。重要的饮食,特别是对于膳食纤维的消耗,很好地被认为是塑造结肠微生物群组合物的最重要因素之一。因此,已经进行了许多研究以探索膳食纤维类型,这些纤维类型可以预测地操纵结肠微生物群以改善健康。然而,这些研究中的大多数在微生物利用和省略了详细的碳水化合物结构分析方面取消了纤维结构的广阔。在某些情况下,这导致使用(理论上)相同的纤维之间的研究产生冲突的结果。在这项研究中,通过使用从不同类别的麸皮阿拉米羰基的体外粪便发酵研究进行了体外粪便发酵研究,我们表明膳食纤维结构的甚至细微变化导致发散的微生物社区和代谢产出。这强调了在研究中研究肠纤维与肠道微生物,体内和体内肠道微生物的相互作用的结构分辨率更高的结构分辨率。

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