结直肠癌肠道环境调节微生物群的活性并促进 ESKAPE 及其他病原体的多药耐药表型。

The Colorectal Cancer Gut Environment Regulates Activity of the Microbiome and Promotes the Multidrug Resistant Phenotype of ESKAPE and Other Pathogens.

机构信息

Centre for Sports, Exercise and Life Sciences, Coventry University, Coventry, United Kingdom.

Divison of Biomedical Sciences, Warwick Medical School, University of Warwick, Warwick, United Kingdom.

出版信息

mSphere. 2023 Apr 20;8(2):e0062622. doi: 10.1128/msphere.00626-22. Epub 2023 Feb 27.

Abstract

Taxonomic composition of the gut microbiota in colorectal cancer (CRC) patients is altered, a newly recognized driving force behind the disease, the activity of which has been overlooked. We conducted a pilot study on active microbial taxonomic composition in the CRC gut via metatranscriptome and 16S rRNA gene (rDNA) sequencing. We revealed sub-populations in CRC ( = 10) and control ( = 10) cohorts of over-active and dormant species, as changes in activity were often independent from abundance. Strikingly, the diseased gut significantly influenced transcription of butyrate producing bacteria, clinically relevant ESKAPE, oral, and Enterobacteriaceae pathogens. A focused analysis of antibiotic (AB) resistance genes showed that both CRC and control microbiota displayed a multidrug resistant phenotype, including ESKAPE species. However, a significant majority of AB resistance determinants of several AB families were upregulated in the CRC gut. We found that environmental gut factors regulated AB resistance gene expression of aerobic CRC microbiota, specifically acid, osmotic, and oxidative pressures in a predominantly health-dependent manner. This was consistent with metatranscriptome analysis of these cohorts, while osmotic and oxidative pressures induced differentially regulated responses. This work provides novel insights into the organization of active microbes in CRC, and reveals significant regulation of functionally related group activity, and unexpected microbiome-wide upregulation of AB resistance genes in response to environmental changes of the cancerous gut. The human gut microbiota in colorectal cancer patients have a distinct population compared to heathy counterparts. However, the activity (gene expression) of this community has not been investigated. Following quantification of both expressed genes and gene abundance, we established that a sub-population of microbes lies dormant in the cancerous gut, while other groups, namely, clinically relevant oral and multi-drug resistant pathogens, significantly increased in activity. Targeted analysis of community-wide antibiotic resistance determinants found that their expression occurs independently of antibiotic treatment, regardless of host health. However, its expression in aerobes, , can be regulated by specific environmental stresses of the gut, including organic and inorganic acid pressure in a health-dependent manner. This work advances the field of microbiology in the context of disease, showing, for the first time, that colorectal cancer regulates activity of gut microorganisms and that specific gut environmental pressures can modulate their antibiotic resistance determinants expression.

摘要

结直肠癌(CRC)患者的肠道微生物群的分类组成发生了改变,这是该疾病的一个新的驱动因素,但其活性一直被忽视。我们通过宏转录组和 16S rRNA 基因(rDNA)测序对 CRC 肠道中的活跃微生物分类组成进行了初步研究。我们揭示了 CRC(n=10)和对照组(n=10)队列中过度活跃和休眠物种的亚群,因为活性的变化通常与丰度无关。引人注目的是,患病肠道显著影响丁酸产生菌、临床相关 ESKAPE、口腔和肠杆菌科病原体的转录。对抗生素(AB)耐药基因的集中分析表明,CRC 和对照微生物组均表现出多药耐药表型,包括 ESKAPE 物种。然而,CRC 肠道中 AB 耐药基因的多个 AB 家族的绝大多数耐药决定因素均上调。我们发现,环境肠道因素调节有氧 CRC 微生物组的 AB 耐药基因表达,特别是以主要依赖健康的方式调节酸、渗透压和氧化压力。这与这些队列的宏转录组分析一致,而渗透压和氧化压力诱导了不同的调节反应。这项工作为 CRC 中活跃微生物的组织提供了新的见解,并揭示了功能相关群活性的显著调节,以及对癌症肠道环境变化的出乎意料的微生物组范围内 AB 耐药基因的上调。 与健康对照组相比,结直肠癌患者的肠道微生物群具有独特的种群。然而,尚未研究这个群落的活性(基因表达)。在对表达基因和基因丰度进行定量后,我们发现,癌症肠道中微生物的一个亚群处于休眠状态,而其他群体,即临床相关的口腔和多药耐药病原体,其活性显著增加。对社区范围抗生素耐药决定因素的靶向分析发现,其表达独立于抗生素治疗,而与宿主健康无关。然而,其在需氧菌中的表达可以通过肠道的特定环境压力来调节,包括健康依赖性的有机和无机酸压力。这项工作在疾病背景下推进了微生物学领域,首次表明结直肠癌调节肠道微生物的活性,并且特定的肠道环境压力可以调节其抗生素耐药决定因素的表达。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2834/10117110/a7262a004f0d/msphere.00626-22-f001.jpg

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