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焦磷酸测序揭示了与严重肺功能下降相关的囊性纤维化肺部微生物群差异。

Pyrosequencing Unveils Cystic Fibrosis Lung Microbiome Differences Associated with a Severe Lung Function Decline.

作者信息

Bacci Giovanni, Paganin Patrizia, Lopez Loredana, Vanni Chiara, Dalmastri Claudia, Cantale Cristina, Daddiego Loretta, Perrotta Gaetano, Dolce Daniela, Morelli Patrizia, Tuccio Vanessa, De Alessandri Alessandra, Fiscarelli Ersilia Vita, Taccetti Giovanni, Lucidi Vincenzina, Bevivino Annamaria, Mengoni Alessio

机构信息

Department of Biology, University of Florence, Florence, Italy.

Department for Sustainability of Production and Territorial Systems, Biotechnologies and Agro-Industry Division, ENEA Casaccia Research Center, Rome, Italy.

出版信息

PLoS One. 2016 Jun 29;11(6):e0156807. doi: 10.1371/journal.pone.0156807. eCollection 2016.

Abstract

Chronic airway infection is a hallmark feature of cystic fibrosis (CF) disease. In the present study, sputum samples from CF patients were collected and characterized by 16S rRNA gene-targeted approach, to assess how lung microbiota composition changes following a severe decline in lung function. In particular, we compared the airway microbiota of two groups of patients with CF, i.e. patients with a substantial decline in their lung function (SD) and patients with a stable lung function (S). The two groups showed a different bacterial composition, with SD patients reporting a more heterogeneous community than the S ones. Pseudomonas was the dominant genus in both S and SD patients followed by Staphylococcus and Prevotella. Other than the classical CF pathogens and the most commonly identified non-classical genera in CF, we found the presence of the unusual anaerobic genus Sneathia. Moreover, the oligotyping analysis revealed the presence of other minor genera described in CF, highlighting the polymicrobial nature of CF infection. Finally, the analysis of correlation and anti-correlation networks showed the presence of antagonism and ecological independence between members of Pseudomonas genus and the rest of CF airways microbiota, with S patients showing a more interconnected community in S patients than in SD ones. This population structure suggests a higher resilience of S microbiota with respect to SD, which in turn may hinder the potential adverse impact of aggressive pathogens (e.g. Pseudomonas). In conclusion, our findings shed a new light on CF airway microbiota ecology, improving current knowledge about its composition and polymicrobial interactions in patients with CF.

摘要

慢性气道感染是囊性纤维化(CF)疾病的一个标志性特征。在本研究中,收集了CF患者的痰液样本,并采用靶向16S rRNA基因的方法进行特征分析,以评估肺功能严重下降后肺部微生物群组成的变化。特别是,我们比较了两组CF患者的气道微生物群,即肺功能大幅下降的患者(SD)和肺功能稳定的患者(S)。两组患者的细菌组成不同,SD组患者的群落比S组患者的群落更加多样化。假单胞菌属在S组和SD组患者中均为优势菌属,其次是葡萄球菌属和普雷沃菌属。除了经典的CF病原体和CF中最常见的非经典菌属外,我们还发现了不寻常的厌氧菌属斯内氏菌的存在。此外,寡型分析揭示了CF中描述的其他次要菌属的存在,突出了CF感染的多微生物性质。最后,相关性和反相关性网络分析表明,假单胞菌属成员与CF气道微生物群的其他成员之间存在拮抗作用和生态独立性,S组患者的群落比SD组患者的群落联系更紧密。这种种群结构表明,S组微生物群相对于SD组具有更高的恢复力,这反过来可能会阻碍侵袭性病原体(如假单胞菌)的潜在不利影响。总之,我们的研究结果为CF气道微生物群生态学提供了新的见解,增进了我们对CF患者微生物群组成及其多微生物相互作用的现有认识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e73/4927098/8a1a0eb68bd4/pone.0156807.g001.jpg

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