Exploring phage-host interactions in Burkholderia cepacia complex bacterium to reveal host factors and phage resistance genes using CRISPRi functional genomics and transcriptomics.

IF 3.8 2区 生物学 Q2 MICROBIOLOGY
Ben Diaz, Rohan Krishna, Joseph S Schoeniger, Catherine M Mageeney
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Abstract

Complex interactions of bacteriophages with their bacterial hosts determine phage host range and infectivity. While phage defense systems and host factors have been identified in model bacteria, they remain challenging to predict in non-model bacteria. In this paper, we integrate functional genomics and transcriptomics to investigate phage-host interactions, revealing active phage resistance and host factor genes in Burkholderia cenocepacia K56-2. Burkholderia cepacia complex species are commonly found in soil and are opportunistic pathogens in immunocompromised patients. We studied infection of B. cenocepacia K56-2 with Bcep176, a temperate phage isolated from Burkholderia multivorans. A genome-wide dCas9 knockdown library targeting B. cenocepacia K56-2 was constructed, and a pooled infection experiment identified 63 novel genes or operons coding for candidate host factors or phage resistance genes. The activities of a subset of candidate host factor and resistance genes were validated via single-gene knockdowns. Transcriptomics of B. cenocepacia K56-2 during Bcep176 infection revealed that expression of genes coding for host factor and resistance candidates identified in this screen was significantly altered during infection by 4 h post-infection. Identifying which bacterial genes are involved in phage infection is important to understand the ecological niches of B. cenocepacia and its phages, and for designing phage therapies.IMPORTANCEBurkholderia cepacia complex bacteria are opportunistic pathogens inherently resistant to antibiotics, and phage therapy is a promising alternative treatment for chronically infected patients. Burkholderia bacteria are also ubiquitous in soil microbiomes. To develop improved phage therapies for pathogenic Burkholderia bacteria, or engineer phages for applications, such as microbiome editing, it's essential to know the bacterial host factors required by the phage to kill bacteria, as well as how the bacteria prevent phage infection. This work identified 65 genes involved in phage-host interactions in Burkholderia cenocepacia K56-2 and tracked their expression during infection. These findings establish a knowledge base to select and engineer phages infecting or transducing Burkholderia bacteria.

利用CRISPRi功能基因组学和转录组学技术探索洋葱伯克霍尔德菌复合细菌中噬菌体-宿主相互作用,揭示宿主因子和噬菌体抗性基因。
噬菌体与其细菌宿主的复杂相互作用决定了噬菌体宿主的范围和传染性。虽然噬菌体防御系统和宿主因子已经在模型细菌中被确定,但在非模型细菌中预测它们仍然具有挑战性。在本文中,我们结合功能基因组学和转录组学来研究噬菌体与宿主的相互作用,揭示了结核杆菌K56-2的活性噬菌体抗性和宿主因子基因。洋葱伯克霍尔德菌复合体常见于土壤中,是免疫功能低下患者的机会致病菌。我们研究了从多佛氏伯克氏菌中分离的温带噬菌体Bcep176感染新脑结核杆菌K56-2。构建了针对cenocepacia K56-2的全基因组dCas9敲低文库,并通过合并感染实验鉴定了63个编码候选宿主因子或噬菌体抗性基因的新基因或操纵子。候选宿主因子和抗性基因子集的活性通过单基因敲低得到验证。在Bcep176感染期间,结核分枝杆菌K56-2的转录组学显示,在感染后4小时,该筛选中鉴定的宿主因子和抗性候选基因的编码表达显著改变。确定哪些细菌基因参与了噬菌体感染,对于了解新绿芽孢杆菌及其噬菌体的生态位以及设计噬菌体治疗方法具有重要意义。重要意义洋葱伯克霍尔德菌复合菌是对抗生素固有耐药的机会性病原体,噬菌体治疗是慢性感染患者的一种有希望的替代治疗方法。伯克氏菌在土壤微生物群中也无处不在。为了开发针对致病性伯克霍尔德氏菌的改进噬菌体疗法,或者设计噬菌体用于微生物组编辑等应用,有必要了解噬菌体杀死细菌所需的细菌宿主因子,以及细菌如何预防噬菌体感染。本研究鉴定了65个与结核杆菌K56-2噬菌体-宿主相互作用有关的基因,并追踪了它们在感染过程中的表达。这些发现为选择和设计感染或转导伯克氏菌的噬菌体奠定了基础。
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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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