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理解细菌生长中文化条件的影响:使用拉曼显微镜的生化视角。

Understanding the effects of culture conditions in bacterial growth: A biochemical perspective using Raman microscopy.

机构信息

Department of Inorganic and Physical Chemistry, Indian Institute of Science, Bangalore, Karnataka, India.

Centre for BioSystems Science and Engineering, Indian Institute of Science, Bangalore, Karnataka, India.

出版信息

J Biophotonics. 2020 Jan;13(1):e201900233. doi: 10.1002/jbio.201900233. Epub 2019 Oct 9.

DOI:10.1002/jbio.201900233
PMID:31444944
Abstract

Rapid, sensitive and label-free methods to probe bacterial growth irrespective of the culture conditions can shed light on the mechanisms by which bacteria adapt to different environmental stimuli. Raman spectroscopy can rapidly and continuously monitor the growth of bacteria under varied conditions. In this study, the growth of Escherichia coli in Luria broth (nutrient rich conditions) and minimal media with either glucose or glycerol as carbon source (nutrient limiting conditions) is profiled using Raman spectroscopy. Moreover, the study also gives insights into the altered bacterial biochemistry upon exposure to low- (25°C) and high-temperature (45°C) stress. Raman spectral measurement was performed on bulk bacteria cultured under laboratory conditions. A detailed analysis of the spectra as a function of bacterial growth reveals changes in Raman band intensities/area of biomolecules such as DNA, proteins and lipids. We also report five novel ratiometric markers (I /I , I /I , I /I , I /I and I /I ) that can identify the phase of growth, independent of the culture condition. Unsupervised multivariate methods like Principal Component Analysis also corroborate the aforementioned markers of growth. Altogether, our findings highlight the potential of Raman spectroscopy in yielding universal biochemical signatures that may be indicative of stress and aging in a growth milieu.

摘要

快速、灵敏且无需标记的方法可以探测细菌的生长情况,而无需考虑培养条件,这可以揭示细菌适应不同环境刺激的机制。拉曼光谱可以快速连续地监测不同条件下细菌的生长情况。在这项研究中,使用拉曼光谱对大肠杆菌在富含营养的 Luria 肉汤和以葡萄糖或甘油为碳源的营养限制条件下的最小培养基中的生长情况进行了分析。此外,该研究还深入了解了细菌在暴露于低温(25°C)和高温(45°C)应激下的生化变化。拉曼光谱测量是在实验室条件下培养的大量细菌上进行的。对随细菌生长变化的光谱进行详细分析,可以揭示生物分子如 DNA、蛋白质和脂质的拉曼带强度/面积的变化。我们还报告了五个新的相对标记物(I /I 、I /I 、I /I 、I /I 和 I /I ),它们可以独立于培养条件来识别生长阶段。无监督的多元方法,如主成分分析,也证实了上述生长标记物。总之,我们的研究结果强调了拉曼光谱在产生可能指示生长环境中的应激和衰老的通用生化特征方面的潜力。

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