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Viability Quantitative PCR Utilizing Propidium Monoazide, Spheroplast Formation, and Campylobacter coli as a Bacterial Model

机译:利用单叠氮化丙锭,原生质球形成和弯曲杆菌作为细菌模型的可行性定量PCR

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A viability quantitative PCR (qPCR) utilizing propidium monoazide (PMA) is presented for rapid quantification of viable cells using the foodborne pathogen Campylobacter coli as a bacterial model. It includes optimized spheroplast formation via lysozyme and EDTA, induction of a mild osmotic shock for enhancing the selective penetration of PMA into dead cells, and exploitation of an internal sample process control (ISPC) involving cell inactivation to assess residual false-positive signals within each sample. Spheroplasting of bacteria in exponential phase did not permit PMA entrance into viable cells since a strong linear relationship was detected between simple qPCR and PMA-qPCR quantification, and no differences were observed regardless of whether spheroplasting was utilized. The PMA-qPCR signal suppression of dead cells was elevated using spheroplast formation. With regard to the ISPC, cell inactivation by hydrogen peroxide resulted in higher signal suppression during qPCR than heat inactivation did. Viability quantification of C. coli cells by optimized spheroplasting-PMA-qPCR with ISPC was successfully applied in an aging pure culture under aerobic conditions and artificially inoculated meat. The same method exhibited a high linear range of quantification (1.5 to 8.5 log10 viable cells ml?1), and results were highly correlated with culture-based enumeration. PMA-qPCR quantification of viable cells can be affected by their rigidity, age, culture media, and niches, but spheroplast formation along with osmotic shock and the use of a proper ISPC can address such variations. The developed methodology could detect cells in a viable-but-nonculturable state and might be utilized for the quantification of other Gram-negative bacteria.IMPORTANCE There is need for rapid and accurate methods to detect viable bacterial cells of foodborne pathogens. Conventional culture-based methods are time-consuming and unable to detect bacteria in a viable-but-nonculturable state. The high sensitivity and specificity of the quantitative PCR (qPCR) are negated by its inability to differentiate the DNAs from viable and dead cells. The combination of propidium monoazide (PMA), a DNA-intercalating dye, with qPCR assays is promising for detection of viable cells. Despite encouraging results, these assays still encounter various challenges, such as false-positive signals by dead cells and the lack of an internal control identifying these signals per sample. The significance of our research lies in enhancing the selective entrance of PMA into dead Campylobacter coli cells via spheroplasting and in developing an internal sample process control, thus delivering reliable results in pure cultures and meat samples, approaches that can be applicable to other Gram-negative pathogens.
机译:提出了利用单叠氮化丙锭(PMA)进行生存力定量PCR(qPCR),以食源性病原弯曲杆菌弯曲杆菌为细菌模型对活细胞进行快速定量的方法。它包括通过溶菌酶和EDTA优化的原生质球形成,诱导轻度的渗透压休克以增强PMA对死细胞的选择性渗透以及利用内部样品过程控制(ISPC)进行细胞灭活以评估每个样品中残留的假阳性信号样品。指数期细菌球囊移植术不允许PMA进入活细胞,因为在简单qPCR和PMA-qPCR定量之间检测到强线性关系,无论是否使用球囊移植术,均未观察到差异。使用原生质球的形成提高了死细胞的PMA-qPCR信号抑制。关于ISPC,过氧化氢使细胞失活导致qPCR期间的信号抑制作用高于热失活。通过使用ISPC进行优化的原生球培养-PMA-qPCR定量分析大肠杆菌细胞的活力,已成功地应用于有氧条件下老化的纯培养物和人工接种的肉中。相同的方法显示出高的线性定量范围(1.5至8.5 log10个活细胞ml?1),结果与基于培养物的计数高度相关。 PMA-qPCR对活细胞的定量可能会受到其硬度,年龄,培养基和壁ni的影响,但是原生质球的形成以及渗透压和适当ISPC的使用都可以解决这种变异。所开发的方法可以检测处于存活但不可培养状态的细胞,并可以用于定量其他革兰氏阴性细菌。重要事项需要快速,准确的方法来检测食源性病原体的存活细菌细胞。传统的基于培养的方法耗时且无法检测到处于可行但不可培养状态的细菌。定量PCR(qPCR)的高灵敏度和特异性被其无法区分DNA与活细胞和死细胞所否定。 DNA嵌入染料一叠氮丙锭(PMA)与qPCR分析的结合有望用于检测活细胞。尽管获得了令人鼓舞的结果,但这些测定法仍面临各种挑战,例如死细胞产生的假阳性信号以及缺乏内部对照来识别每个样品的这些信号。我们研究的意义在于通过原生质球增强PMA选择性进入死亡的弯曲杆菌细胞,并开​​发内部样品过程控制,从而在纯培养物和肉样品中提供可靠的结果,该方法可应用于其他革兰氏阴性菌病原体。

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