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系统分析鸡肠道微生物组揭示了饮食中添加抗生素会改变多个微生物途径的表达,而对群落结构的影响很小。

Systematic profiling of the chicken gut microbiome reveals dietary supplementation with antibiotics alters expression of multiple microbial pathways with minimal impact on community structure.

机构信息

Department of Biochemistry, University of Toronto, Toronto, ON, Canada.

Program in Molecular Medicine, Hospital for Sick Children, Peter Gilgan Center for Research and Learning, 686 Bay Street, Toronto, ON, M5G 0A4, Canada.

出版信息

Microbiome. 2022 Aug 15;10(1):127. doi: 10.1186/s40168-022-01319-7.

Abstract

BACKGROUND

The emergence of antimicrobial resistance is a major threat to global health and has placed pressure on the livestock industry to eliminate the use of antibiotic growth promotants (AGPs) as feed additives. To mitigate their removal, efficacious alternatives are required. AGPs are thought to operate through modulating the gut microbiome to limit opportunities for colonization by pathogens, increase nutrient utilization, and reduce inflammation. However, little is known concerning the underlying mechanisms. Previous studies investigating the effects of AGPs on the poultry gut microbiome have largely focused on 16S rDNA surveys based on a single gastrointestinal (GI) site, diet, and/or timepoint, resulting in an inconsistent view of their impact on community composition.

METHODS

In this study, we perform a systematic investigation of both the composition and function of the chicken gut microbiome, in response to AGPs. Birds were raised under two different diets and AGP treatments, and 16S rDNA surveys applied to six GI sites sampled at three key timepoints of the poultry life cycle. Functional investigations were performed through metatranscriptomics analyses and metabolomics.

RESULTS

Our study reveals a more nuanced view of the impact of AGPs, dependent on age of bird, diet, and intestinal site sampled. Although AGPs have a limited impact on taxonomic abundances, they do appear to redefine influential taxa that may promote the exclusion of other taxa. Microbiome expression profiles further reveal a complex landscape in both the expression and taxonomic representation of multiple pathways including cell wall biogenesis, antimicrobial resistance, and several involved in energy, amino acid, and nucleotide metabolism. Many AGP-induced changes in metabolic enzyme expression likely serve to redirect metabolic flux with the potential to regulate bacterial growth or produce metabolites that impact the host.

CONCLUSIONS

As alternative feed additives are developed to mimic the action of AGPs, our study highlights the need to ensure such alternatives result in functional changes that are consistent with site-, age-, and diet-associated taxa. The genes and pathways identified in this study are therefore expected to drive future studies, applying tools such as community-based metabolic modeling, focusing on the mechanistic impact of different dietary regimes on the microbiome. Consequently, the data generated in this study will be crucial for the development of next-generation feed additives targeting gut health and poultry production. Video Abstract.

摘要

背景

抗菌药物耐药性的出现是对全球健康的重大威胁,这给畜牧业带来了压力,要求其停止将抗生素生长促进剂(AGP)作为饲料添加剂使用。为了减轻这种影响,需要寻找有效的替代品。AGP 被认为通过调节肠道微生物群来限制病原体的定植机会、增加营养物质的利用并减少炎症。然而,关于其潜在机制知之甚少。先前研究 AGP 对家禽肠道微生物群影响的研究主要集中在基于单个胃肠道(GI)部位、饮食和/或时间点的 16S rDNA 调查上,导致人们对其对群落组成的影响存在不一致的看法。

方法

在这项研究中,我们系统地研究了 AGP 对鸡肠道微生物群的组成和功能的影响。鸟类在两种不同的饮食和 AGP 处理下饲养,并在禽类生命周期的三个关键时间点采集六个 GI 部位进行 16S rDNA 调查。通过宏转录组学分析和代谢组学进行功能研究。

结果

我们的研究揭示了 AGP 影响的更细致的观点,这取决于鸟类的年龄、饮食和采样的肠道部位。尽管 AGP 对分类丰度的影响有限,但它们似乎确实重新定义了可能促进其他分类群排除的有影响力的分类群。微生物组表达谱进一步揭示了多个途径的表达和分类群代表的复杂情况,包括细胞壁生物发生、抗菌抗性以及参与能量、氨基酸和核苷酸代谢的多个途径。许多 AGP 诱导的代谢酶表达变化可能有助于改变代谢通量,从而有可能调节细菌生长或产生影响宿主的代谢物。

结论

随着替代饲料添加剂的开发以模拟 AGP 的作用,我们的研究强调需要确保这些替代品产生与部位、年龄和饮食相关的分类群一致的功能变化。因此,本研究确定的基因和途径有望推动未来的研究,应用基于群落的代谢建模等工具,重点研究不同饮食方案对微生物组的机制影响。因此,本研究产生的数据对于开发针对肠道健康和家禽生产的下一代饲料添加剂至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a889/9377095/0b577190d28b/40168_2022_1319_Fig1_HTML.jpg

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