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Population analysis of Legionella pneumophila reveals the basis of resistance to complement-mediated killing

 
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Manage episode 288621575 series 2902311
内容由MultiModal LLC and Multimodal LLC提供。所有播客内容(包括剧集、图形和播客描述)均由 MultiModal LLC and Multimodal LLC 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal
Link to bioRxiv paper: http://biorxiv.org/cgi/content/short/2020.08.14.250670v1?rss=1 Authors: Fitzgerald, J. R., Wee, B., Alves, J., Lindsay, D., Cameron, R., Pickering, A., Gorzynski, J., Corander, J., Marttinen, P., Smith, A. Abstract: Legionella pneumophila is the most common cause of the severe respiratory infection known as Legionnaires disease. L. pneumophila is typically a symbiont of free-living amoeba, and our understanding of the bacterial factors that determine human pathogenicity is limited. Here we carried out a population genomic study of 900 L. pneumophila isolates from human clinical and environmental samples to examine their genetic diversity, global distribution and the basis for human pathogenicity. We found that although some clones are more commonly associated with clinical infections, the capacity for human disease is representative of the breadth of species diversity. To investigate the bacterial genetic basis for human disease potential, we carried out a genome-wide association study that identified a single gene (lag-1), to be most strongly associated with clinical isolates. Molecular evolutionary analysis showed that lag-1, which encodes an O-acetyltransferase responsible for lipopolysaccharide modification, has been distributed horizontally across all major phylogenetic clades of L. pneumophila by frequent recent recombination events. Functional analysis revealed a correlation between the presence of a functional lag-1 gene and resistance to killing in human serum and bovine broncho-alveolar lavage. In addition, L. pneumophila strains that express lag-1 escaped complement-mediated phagocytosis by neutrophils. Importantly, we discovered that the expression of lag-1 confers the capacity to evade complement-mediated killing by inhibiting deposition of classical pathway molecules on the bacterial surface. In summary, our combined population and functional analyses identified L. pneumophila genetic traits linked to human disease and revealed the molecular basis for resistance to complement-mediated killing, a previously elusive trait of direct relevance to human disease pathogenicity. Copy rights belong to original authors. Visit the link for more info
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已归档的系列专辑 ("不活跃的收取点" status)

When? This feed was archived on December 15, 2021 22:10 (2+ y ago). Last successful fetch was on March 29, 2021 12:55 (3y ago)

Why? 不活跃的收取点 status. 我们的伺服器已尝试了一段时间,但仍然无法截取有效的播客收取点

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Manage episode 288621575 series 2902311
内容由MultiModal LLC and Multimodal LLC提供。所有播客内容(包括剧集、图形和播客描述)均由 MultiModal LLC and Multimodal LLC 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal
Link to bioRxiv paper: http://biorxiv.org/cgi/content/short/2020.08.14.250670v1?rss=1 Authors: Fitzgerald, J. R., Wee, B., Alves, J., Lindsay, D., Cameron, R., Pickering, A., Gorzynski, J., Corander, J., Marttinen, P., Smith, A. Abstract: Legionella pneumophila is the most common cause of the severe respiratory infection known as Legionnaires disease. L. pneumophila is typically a symbiont of free-living amoeba, and our understanding of the bacterial factors that determine human pathogenicity is limited. Here we carried out a population genomic study of 900 L. pneumophila isolates from human clinical and environmental samples to examine their genetic diversity, global distribution and the basis for human pathogenicity. We found that although some clones are more commonly associated with clinical infections, the capacity for human disease is representative of the breadth of species diversity. To investigate the bacterial genetic basis for human disease potential, we carried out a genome-wide association study that identified a single gene (lag-1), to be most strongly associated with clinical isolates. Molecular evolutionary analysis showed that lag-1, which encodes an O-acetyltransferase responsible for lipopolysaccharide modification, has been distributed horizontally across all major phylogenetic clades of L. pneumophila by frequent recent recombination events. Functional analysis revealed a correlation between the presence of a functional lag-1 gene and resistance to killing in human serum and bovine broncho-alveolar lavage. In addition, L. pneumophila strains that express lag-1 escaped complement-mediated phagocytosis by neutrophils. Importantly, we discovered that the expression of lag-1 confers the capacity to evade complement-mediated killing by inhibiting deposition of classical pathway molecules on the bacterial surface. In summary, our combined population and functional analyses identified L. pneumophila genetic traits linked to human disease and revealed the molecular basis for resistance to complement-mediated killing, a previously elusive trait of direct relevance to human disease pathogenicity. Copy rights belong to original authors. Visit the link for more info
  continue reading

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