Monitoring phage infection and lysis of surface-immobilized bacteria by QCM-D.

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Analytical and Bioanalytical Chemistry Pub Date : 2025-04-01 Epub Date: 2025-02-25 DOI:10.1007/s00216-025-05803-5
Bhanu K Pothineni, René Probst, Dorothee Kiefer, Verena Dobretzberger, Ivan Barišić, Guido Grundmeier, Adrian Keller
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引用次数: 0

Abstract

While being a promising approach for the treatment of infections caused by drug-resistant, pathogenic bacteria, the clinical implementation of phage therapy still faces several challenges. One of these challenges lies in the high strain-specificity of most bacteriophages, which makes it necessary to screen large phage collections against the target pathogens in order to identify suitable candidates for the formulations of personalized therapeutic phage cocktails. In this work, we evaluate the potential of quartz crystal microbalance with dissipation monitoring (QCM-D) to identify and detect phage infection and subsequent lysis of bacteria immobilized on the surfaces of the QCM-D sensors. Using lytic Escherichia coli phage T7 as a model, we show that phage infection of E. coli cells results in various unique alterations in the behaviors of the frequency (Δf) and dissipation (ΔD) signals, which are not observed during exposure of the E. coli strain to non-infectious Bacillus subtilis phage phi29 at similar concentration. To aid future phage screening campaigns, we furthermore identify a single measurement parameter, i.e., the spread between the different overtones of ΔD, that can be used to detect phage-induced lysis. For T7 infection of E. coli, this is achieved within 4 h after inoculation, including immobilization and growth of the bacteria on the sensor surface, as well as the completed phage propagation cycle. Given the commercial availability of highly automated multichannel systems and the fact that this approach does not require any sensor modifications, QCM-D has the potential to become a valuable tool for screening medium-sized phage collections against target pathogens.

QCM-D监测噬菌体感染和表面固定化细菌裂解。
虽然噬菌体治疗是治疗耐药致病菌引起的感染的一种有希望的方法,但临床实施噬菌体治疗仍面临一些挑战。其中一个挑战在于大多数噬菌体的高菌株特异性,这使得有必要筛选针对目标病原体的大型噬菌体集合,以便为个性化治疗噬菌体鸡尾酒配方确定合适的候选者。在这项工作中,我们评估了带有耗散监测(QCM-D)的石英晶体微天平在识别和检测固定在QCM-D传感器表面的噬菌体感染和随后裂解细菌方面的潜力。利用裂解性大肠杆菌噬菌体T7作为模型,我们发现大肠杆菌细胞的噬菌体感染导致频率(Δf)和耗散(ΔD)信号行为的各种独特变化,而在大肠杆菌菌株暴露于相似浓度的非感染性枯草芽孢杆菌噬菌体phi29时则没有观察到这些变化。为了帮助未来的噬菌体筛选活动,我们进一步确定了一个单一的测量参数,即ΔD不同泛音之间的传播,可用于检测噬菌体诱导的裂解。对于大肠杆菌T7感染,在接种后4小时内完成,包括细菌在传感器表面的固定和生长,以及噬菌体的完整繁殖周期。考虑到高度自动化的多通道系统的商业可用性,以及这种方法不需要任何传感器修改的事实,QCM-D有潜力成为筛选中型噬菌体收集物对抗目标病原体的有价值的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.00
自引率
4.70%
发文量
638
审稿时长
2.1 months
期刊介绍: Analytical and Bioanalytical Chemistry’s mission is the rapid publication of excellent and high-impact research articles on fundamental and applied topics of analytical and bioanalytical measurement science. Its scope is broad, and ranges from novel measurement platforms and their characterization to multidisciplinary approaches that effectively address important scientific problems. The Editors encourage submissions presenting innovative analytical research in concept, instrumentation, methods, and/or applications, including: mass spectrometry, spectroscopy, and electroanalysis; advanced separations; analytical strategies in “-omics” and imaging, bioanalysis, and sampling; miniaturized devices, medical diagnostics, sensors; analytical characterization of nano- and biomaterials; chemometrics and advanced data analysis.
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