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大规模基因组分析并未显示在细菌性脑膜炎期间血液和脑脊液生态位之间存在病原体适应性的证据。

Large scale genomic analysis shows no evidence for pathogen adaptation between the blood and cerebrospinal fluid niches during bacterial meningitis.

机构信息

1​Pathogen Genomics, Wellcome Trust Sanger Institute, Hinxton, UK.

2​Department of Neurology, Center for Infection and Immunity Amsterdam (CINIMA), Academic Medical Center, Amsterdam, The Netherlands.

出版信息

Microb Genom. 2017 Jan 31;3(1):e000103. doi: 10.1099/mgen.0.000103. eCollection 2017 Jan.

Abstract

Recent studies have provided evidence for rapid pathogen genome diversification, some of which could potentially affect the course of disease. We have previously described such variation seen between isolates infecting the blood and cerebrospinal fluid (CSF) of a single patient during a case of bacterial meningitis. Here, we performed whole-genome sequencing of paired isolates from the blood and CSF of 869 meningitis patients to determine whether such variation frequently occurs between these two niches in cases of bacterial meningitis. Using a combination of reference-free variant calling approaches, we show that no genetic adaptation occurs in either invaded niche during bacterial meningitis for two major pathogen species, and . This study therefore shows that the bacteria capable of causing meningitis are already able to do this upon entering the blood, and no further sequence change is necessary to cross the blood-brain barrier. Our findings place the focus back on bacterial evolution between nasopharyngeal carriage and invasion, or diversity of the host, as likely mechanisms for determining invasiveness.

摘要

最近的研究提供了病原体基因组快速多样化的证据,其中一些可能会影响疾病的进程。我们之前描述过在一例细菌性脑膜炎患者的血液和脑脊液(CSF)中感染的分离株之间观察到的这种变异。在这里,我们对 869 例脑膜炎患者的血液和 CSF 中的配对分离株进行了全基因组测序,以确定在细菌性脑膜炎的情况下,这两种不同的生态位之间是否经常发生这种变异。通过结合无参考变异调用方法,我们表明在细菌性脑膜炎期间,两种主要病原体 和 都没有在任何一个入侵部位发生遗传适应。因此,这项研究表明,能够引起脑膜炎的细菌在进入血液时就已经有能力这样做,并且不需要进一步的序列改变来穿过血脑屏障。我们的研究结果将重点重新放在鼻咽携带和入侵之间的细菌进化上,或者宿主的多样性上,因为这可能是决定侵袭性的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d912/5361624/0e1bcaf6dc24/mgen-3-103-g001.jpg

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