Debasish Ghosh, John M Stencel, Clair D Hicks, Fred Payne, Didem Ozevin
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引用次数: 4
摘要
报道了乳酸乳球菌(Lactococcus lactis, ssp lactis)的声发射(AE)检测,其中发射强度用于跟踪和定义营养肉汤生长过程中的代谢活性。在32°C的乳酸乳杆菌生长过程中也获得了光密度(OD)数据,并提供了AE信号相对于细菌的滞后、对数和平稳生长阶段的时间。根据OD数据,在营养液中加入代谢抑制剂NaN3可以消除细菌的代谢活性,通过AE数据采集证实了其不存在。在对数前期和中期,对乳酸菌营养液中添加c2前后的OD和AE数据进行了测定;c2噬菌体m.o.i. (Multiplicity of infection,感染的多样性)的变化有助于区分检测到的AE是来自裂解过程中的细菌细胞还是来自基因组注射到细胞中的c2噬菌体。提出压电传感器的声发射测量足够灵敏,可以检测到接近10(4)cfu/mL的细菌,提供细菌代谢活性的实时数据,并动态监测细胞的噬菌体感染。
Acoustic Emission Signal of Lactococcus lactis before and after Inhibition with NaN 3 and Infection with Bacteriophage c2.
The detection of acoustic emission (AE) from Lactococcus lactis, ssp lactis is reported in which emission intensities are used to follow and define metabolic activity during growth in nutrient broths. Optical density (OD) data were also acquired during L. lactis growth at 32°C and provided insight into the timing of the AE signals relative to the lag, logarithmic, and stationary growth phases of the bacteria. The inclusion of a metabolic inhibitor, NaN3, into the nutrient broth eliminated bacteria metabolic activity according to the OD data, the absence of which was confirmed using AE data acquisition. The OD and AE data were also acquired before and after the addition of Bacteriophage c2 in L. lactis containing nutrient broths during the early or middle logarithmic phase; c2 phage m.o.i. (Multiplicity of infection) was varied to help differentiate whether the detected AE was from bacteria cells during lysis or from the c2 phage during genome injection into the cells. It is proposed that AE measurements using piezoelectric sensors are sensitive enough to detect bacteria at the amount near 10(4) cfu/mL, to provide real time data on bacteria metabolic activity and to dynamically monitor phage infection of cells.