硫酸盐膳食纤维保护肠道微生物群免受抗生素的侵害。

IF 12.7 1区 生物学 Q1 MICROBIOLOGY
Fuqing Wu, Xiaoqian Annie Yu, David Angeles-Albores, Susan E Erdman, Eric J Alm
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引用次数: 0

摘要

背景:抗生素虽然对对抗病原体至关重要,但也会破坏共生菌,导致肠道菌群失衡和相关疾病。然而,减轻此类附带损害的策略在很大程度上仍未得到充分探索。结果:在本研究中,我们发现褐藻多糖,一种从褐藻中提取的海洋多糖,在体外和离体粪便群落中为人类肠道微生物分离株提供抗多种抗生素的广谱生长保护。这种保护作用取决于多糖的结构完整性、分子量和硫含量。转录组学分析显示,褐藻聚糖对基线基因表达的影响很小,但它抵消了卡那霉素诱导的约60%的基因,表明卡那霉素可能具有抑制作用。质谱分析结果进一步表明,这种抑制作用可能是由于岩藻聚糖与卡那霉素在溶液中的非特异性结合所致。最后,动物模型实验表明,岩藻聚糖促进了体内抗生素治疗后肠道微生物的恢复。结论:这些发现表明岩藻糖聚糖可以作为一种潜在的干预措施,帮助保护抗生素治疗期间的肠道微生物群。需要进一步的研究来评估其临床潜力,并确保它不会影响抗菌效果。视频摘要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sulfated dietary fiber protects gut microbiota from antibiotics.

Background: Antibiotics, while essential for combating pathogens, also disrupt commensal bacteria, leading to gut microbiota imbalance and associated diseases. However, strategies to mitigate such collateral damage remain largely underexplored.

Result: In this study, we found that fucoidan, a marine polysaccharide derived from brown seaweed, provides broad-spectrum growth protection against multiple classes of antibiotics for human gut microbial isolates in vitro and for fecal communities ex vivo. This protective effect is dependent on the structural integrity, molecular weight, and sulfur content of the polysaccharide. Transcriptomic analysis showed that while fucoidan had minimal impact on baseline gene expression, it counteracted about 60% of the genes induced by kanamycin, suggesting a potential inhibition of kanamycin. Mass spectrometry results further showed that this inhibition may be due to the non-specific binding of fucoidan to kanamycin in solution. Finally, animal model experiments revealed that fucoidan facilitated the recovery of gut microbes following antibiotic treatment in vivo.

Conclusion: These findings suggest fucoidan could serve as a potential intervention to help protect gut microbiota during antibiotic therapy. Further studies are needed to evaluate its clinical potential and ensure it does not compromise antimicrobial efficacy. Video Abstract.

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来源期刊
Microbiome
Microbiome MICROBIOLOGY-
CiteScore
21.90
自引率
2.60%
发文量
198
审稿时长
4 weeks
期刊介绍: Microbiome is a journal that focuses on studies of microbiomes in humans, animals, plants, and the environment. It covers both natural and manipulated microbiomes, such as those in agriculture. The journal is interested in research that uses meta-omics approaches or novel bioinformatics tools and emphasizes the community/host interaction and structure-function relationship within the microbiome. Studies that go beyond descriptive omics surveys and include experimental or theoretical approaches will be considered for publication. The journal also encourages research that establishes cause and effect relationships and supports proposed microbiome functions. However, studies of individual microbial isolates/species without exploring their impact on the host or the complex microbiome structures and functions will not be considered for publication. Microbiome is indexed in BIOSIS, Current Contents, DOAJ, Embase, MEDLINE, PubMed, PubMed Central, and Science Citations Index Expanded.
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