A diverse set of solubilized natural fibers drives structure-dependent metabolism and modulation of the human gut microbiota.

IF 5.1 1区 生物学 Q1 MICROBIOLOGY
mBio Pub Date : 2025-05-14 Epub Date: 2025-04-11 DOI:10.1128/mbio.00470-25
Maria X Maldonado-Gomez, Katharine M Ng, Riley A Drexler, Alexandria M S Conner, Cory G Vierra, Nithya Krishnakumar, Hannah M Gerber, Zachary R Taylor, Jenna L Treon, Megan Ellis, Jada K A Garcia, James P Cerney, David G Chapin, Robnet T Kerns, Angela M Marcobal, Steven M Watkins, Matthew J Amicucci
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引用次数: 0

Abstract

Growing evidence suggests that inadequate dietary fiber intake, termed the "fiber gap," is linked to disease states through disruption of the gut microbiota. Despite this, our understanding of how various fiber structures influence the microbiota and health is limited by the lack of diverse commercially available fibers. Studies have primarily focused on a limited range of fibers, rather than the diverse array of fibers representative of those commonly found in our diets. In this study, we aimed to investigate how naturally derived fibers impact the human microbiota and their metabolic products. We performed a comprehensive structural characterization and functional evaluation of a unique and highly diverse set of new, highly soluble fibers with varied monosaccharide compositions, glycosidic linkages, and polymer lengths. Using an ex vivo high-throughput human microbiota platform coupled with metabolomic profiling, we demonstrate that these diverse fibers drive distinct and consistent microbial and metabolic profiles across cohorts of donors in a structure-dependent manner. These metabolic effects were accompanied by both general and donor-specific changes in microbial taxa. Finally, we demonstrate that integrating detailed glycomic characterization with microbial and metabolomic data allowed for prediction of functional outcomes driven by a novel material, pineapple pulp fiber. This work highlights the potential for targeted dietary fiber interventions to modulate the microbiota and improve health outcomes, paving the way for the development of new fiber-rich products with specific health benefits.IMPORTANCEFiber deficiency is associated with numerous disease states, many of which are linked to disruption of the gut microbiota. This study encompasses the first systematic and comprehensive characterization of a diverse collection of naturally derived solubilized fibers and their impacts on the microbiota. The results expand our understanding of the beneficial effects of specific carbohydrate structures naturally found in the human diet, highlighting the potential for designing fiber-based health interventions. The high solubility of these fibers increases both the range of products they can be incorporated in as well as their assayability in experiments, enabling a widespread increase in fiber consumption and positive health impacts.

一套多样化的可溶性天然纤维驱动结构依赖的代谢和调节人类肠道微生物群。
越来越多的证据表明,膳食纤维摄入不足,被称为“纤维缺口”,通过破坏肠道微生物群与疾病状态有关。尽管如此,我们对各种纤维结构如何影响微生物群和健康的理解受到缺乏各种商业纤维的限制。研究主要集中在有限范围的纤维上,而不是我们饮食中常见的各种纤维的代表。在这项研究中,我们旨在研究天然纤维如何影响人类微生物群及其代谢产物。我们对一组独特且高度多样化的新型高可溶性纤维进行了全面的结构表征和功能评估,这些纤维具有不同的单糖组成、糖苷键和聚合物长度。利用体外高通量人类微生物群平台结合代谢组学分析,我们证明了这些不同的纤维以结构依赖的方式在供体队列中驱动不同且一致的微生物和代谢谱。这些代谢效应伴随着微生物类群的一般和供体特异性变化。最后,我们证明了将详细的糖糖特征与微生物和代谢组学数据相结合,可以预测一种新型材料菠萝果肉纤维驱动的功能结果。这项工作强调了有针对性的膳食纤维干预在调节微生物群和改善健康结果方面的潜力,为开发具有特定健康益处的新型富含纤维产品铺平了道路。纤维缺乏与许多疾病状态有关,其中许多与肠道微生物群的破坏有关。本研究首次系统和全面地描述了多种天然衍生的可溶性纤维及其对微生物群的影响。研究结果扩大了我们对人类饮食中天然存在的特定碳水化合物结构有益作用的理解,强调了设计基于纤维的健康干预措施的潜力。这些纤维的高溶解度增加了它们可以加入的产品范围以及它们在实验中的可测定性,从而使纤维消费的广泛增加和积极的健康影响成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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