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利用石英音叉传感器实现细菌细胞的实时快速定量分析

Toward the Real-Time and Rapid Quantification of Bacterial Cells Utilizing a Quartz Tuning Fork Sensor.

作者信息

Alshammari Abeer, Abdulmawla Sabaa T, Alsaigh Reem, Alarjani Khaloud Mohammed, Aldosari Norah Salim, Muthuramamoorthy Muthumareeswaran, Assaifan Abdulaziz K, Albrithen Hamad, Alzahrani Khalid E, Alodhayb Abdullah N

机构信息

Department of Physics and Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

Department of Botany and Microbiology, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

出版信息

Micromachines (Basel). 2023 May 25;14(6):1114. doi: 10.3390/mi14061114.

Abstract

The quantitative evaluation of bacterial populations is required in many studies, particularly in the field of microbiology. The current techniques can be time-consuming and require a large volume of samples and trained laboratory personnel. In this regard, on-site, easy-to-use, and direct detection techniques are desirable. In this study, a quartz tuning fork (QTF) was investigated for the real-time detection of in different media, as well as the ability to determine the bacterial state and correlate the QTF parameters to the bacterial concentration. QTFs that are commercially available can also be used as sensitive sensors of viscosity and density by determining the QTFs' damping and resonance frequency. As a result, the influence of viscous biofilm adhered to its surface should be detectable. First, the response of a QTF to different media without was investigated, and Luria-Bertani broth (LB) growth medium caused the largest change in frequency. Then, the QTF was tested against different concentrations of (i.e., 10-10 colony-forming units per milliliter (CFU/mL)). As the concentration increased, the frequency decreased from 32.836 to 32.242 kHz. Similarly, the quality factor decreased with the increasing concentration. With a coefficient () of 0.955, a linear correlation between the QTF parameters and bacterial concentration was established with a 26 CFU/mL detection limit. Furthermore, a considerable change in frequency was observed against live and dead cells in different media. These observations demonstrate the ability of QTFs to distinguish between different bacterial states. QTFs allow real-time, rapid, low-cost, and non-destructive microbial enumeration testing that requires only a small volume of liquid sample.

摘要

许多研究都需要对细菌群体进行定量评估,尤其是在微生物学领域。目前的技术可能耗时较长,需要大量样本以及训练有素的实验室人员。在这方面,现场使用、易于操作的直接检测技术是很有必要的。在本研究中,对石英音叉(QTF)进行了研究,以用于在不同培养基中实时检测细菌,以及确定细菌状态并将QTF参数与细菌浓度相关联的能力。市售的QTF还可以通过测定其阻尼和共振频率用作粘度和密度的灵敏传感器。因此,应该能够检测到附着在其表面的粘性生物膜的影响。首先,研究了QTF对不含细菌的不同培养基的响应,发现Luria-Bertani肉汤(LB)生长培养基引起的频率变化最大。然后,对QTF针对不同浓度的细菌(即每毫升10-10个菌落形成单位(CFU/mL))进行了测试。随着细菌浓度的增加,频率从32.836 kHz降至32.242 kHz。同样,品质因数也随着细菌浓度的增加而降低。QTF参数与细菌浓度之间建立了线性相关性,相关系数(R²)为0.955,检测限为26 CFU/mL。此外,在不同培养基中观察到活细胞和死细胞之间频率有相当大的变化。这些观察结果证明了QTF区分不同细菌状态的能力。QTF能够进行实时、快速、低成本且无损的微生物计数测试,只需要少量液体样本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a86/10304165/6f57a7745de9/micromachines-14-01114-g001.jpg

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