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Engineered Reporter Phages for Rapid Bioluminescence-Based Detection and Differentiation of Viable Listeria Cells

机译:工程记者噬菌体,用于基于生物发光的快速检测和分化的可行李斯特菌细胞

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The pathogen Listeria monocytogenes causes listeriosis, a severe foodborne disease associated with high mortality. Rapid and sensitive methods are required for specific detection of this pathogen during food production. Bioluminescence-based reporter bacteriophages are genetically engineered viruses that infect their host cells with high specificity and transduce a heterologous luciferase gene whose activity can be detected with high sensitivity to indicate the presence of viable target cells. Here, we use synthetic biology for de novo genome assembly and activation as well as CRISPR-Cas-assisted phage engineering to construct a set of reporter phages for the detection and differentiation of viable Listeria cells. Based on a single phage backbone, we compare the performance of four reporter phages that encode different crustacean, cnidarian, and bacterial luciferases. From this panel of reporter proteins, nanoluciferase (NLuc) was identified as a superior enzyme and was subsequently introduced into the genomes of a broad host range phage (A511) and two serovar 1/2- and serovar 4b/6a-specific Listeria phages (A006 and A500, respectively). The broad-range NLuc-based phage A511:: nluc _(CPS) detects one CFU of L. monocytogenes in 25 g of artificially contaminated milk, cold cuts, and lettuce within less than 24 h. In addition, this reporter phage successfully detected Listeria spp. in potentially contaminated natural food samples without producing false-positive or false-negative results. Finally, A006:: nluc and A500:: nluc enable serovar-specific Listeria diagnostics. In conclusion, these NLuc-based reporter phages enable rapid, ultrasensitive detection and differentiation of viable Listeria cells using a simple protocol that is 72 h?faster than culture-dependent approaches.IMPORTANCE Culture-dependent methods are the gold standard for sensitive and specific detection of pathogenic bacteria within the food production chain. In contrast to molecular approaches, these methods detect viable cells, which is a key advantage for foods generated from heat-inactivated source material. However, culture-based diagnostics are typically much slower than molecular or proteomic strategies. Reporter phage assays combine the best of both worlds and allow for near online assessment of microbial safety because phage replication is extremely fast, highly target specific, and restricted to metabolically active host cells. In addition, reporter phage assays are inexpensive and do not require highly trained personnel, facilitating their on-site implementation. The reporter phages presented in this study not only allow for rapid detection but also enable an early estimation of the potential virulence of Listeria isolates from food production and processing sites.
机译:病原体李斯特菌是单核细胞增生引起休闲症,其具有高死亡率的严重食源性疾病。在食品生产期间,需要快速和敏感的方法需要对该病原体的特异性检测。基于生物致发光的报告噬菌体是遗传工程的病毒,其具有高特异性的宿主细胞,并转化的异源荧光素酶基因,其活性可以以高敏感性检测,以指示活性靶细胞的存在。在此,我们使用德诺科基因组组装和激活以及CRISPR-CAS辅助噬菌体工程的合成生物学,构建一组记者噬菌体,用于检测和分化作用李斯特菌细胞。基于单噬菌体骨架,我们比较了编码不同甲壳类动物,中毒率和细菌荧光素酶的四个报告噬菌体的性能。从该记者蛋白的这种面板中,将纳米琥珀酶(Nluc)鉴定为上级酶,随后被引入宽宿主范围噬菌体(A511)和两种Serovar 1 / 2-和Serovar 4b / 6a特异性李斯特潜力噬菌体噬菌体噬菌体( A006和A500分别)。基于宽范围的基于Nluc的噬菌体A511 :: Nluc _(CPS)检测在25克人为污染的牛奶,冷切和莴苣的14小时内1种单核细胞化的CFU。此外,本报告量噬菌体成功检测到Histeria SPP。在可能污染的天然食物样品中,不产生假阳性或假阴性结果。最后,A006 :: nluc和A500 :: nluc启用Serovar特定的Listeria诊断。总之,基于Nluc的报告噬菌体使用72小时的简单方案能够快速,超声检测和分化可行的李斯特菌细胞?比依赖于文化依赖性方法快。依赖于文化的方法是敏感和特异性检测的金标准食品生产链内的病原细菌。与分子方法相比,这些方法检测活细胞,这是由热灭活源材料产生的食物的关键优势。然而,基于文化的诊断通常比分子或蛋白质组学策略慢得多。记者噬菌体测定结合了两个世界的最佳选择,并允许在线安全的近乎在线评估微生物安全性,因为噬菌体复制是非常快的,高度靶标,并限制在代谢活性宿主细胞。此外,记者噬菌体测定价格便宜,不需要高度培训的人员,促进其现场实施。本研究中呈现的记者噬菌体不仅允许快速检测,而且还能早日估计食品生产和加工位点的李斯特菌分离株的潜在毒力。

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