Shao Jie, Xiang Jindong, Axner Ove, Ying Chaofu
Appl Opt. 2016 Mar 20;55(9):2339-45. doi: 10.1364/AO.55.002339.
It is important to monitor and assess the growth of micro-organisms under various conditions. Yet, thus far there has been no technique to do this with the required speed and accuracy. This work demonstrates swift and accurate assessment of the concentration of carbon dioxide that is produced by use of a wavelength-modulated tunable diode-laser based absorption spectroscopy (WM-TDLAS). It is shown by experiments on two types of bacteria, Staphylococcus aureus and Candida albicans, that the technique can produce high signal-to-noise-ratio data from bacteria grown in confined spaces and exposed to limited amounts of nutrients that can be used for extraction of growth parameters by fitting of the Gompertz model. By applying the technique to S. aureus bacteria at various temperatures (in the 25°C to 42°C range), it is specifically shown that both the maximum growth rate and the so-called lag time have a strong temperature dependence (under the specific conditions with a maximum of the former at 37°C) that matches conventional models well for bacterial growth. Hence, it is demonstrated that WM-TDLAS monitoring CO is a user-friendly, non-intrusive, and label-free technique that swiftly, and with high signal-to-noise-ratio, can be used for rapid (on the Hz scale) and accurate assessment of bacterial growth.
监测和评估微生物在各种条件下的生长情况很重要。然而,到目前为止,还没有一种技术能够以所需的速度和精度做到这一点。这项工作展示了利用基于波长调制可调谐二极管激光吸收光谱法(WM-TDLAS)对产生的二氧化碳浓度进行快速准确的评估。通过对金黄色葡萄球菌和白色念珠菌这两种细菌进行实验表明,该技术能够从生长在密闭空间且接触有限量可用于通过拟合冈珀茨模型提取生长参数的营养物质的细菌中产生高信噪比的数据。通过将该技术应用于不同温度(25°C至42°C范围)下的金黄色葡萄球菌,具体表明最大生长速率和所谓的延迟期都具有很强的温度依赖性(在特定条件下,前者在37°C时达到最大值),这与细菌生长的传统模型非常吻合。因此,证明了WM-TDLAS监测CO₂是一种用户友好、非侵入性且无标记的技术,能够快速(在赫兹量级)且以高信噪比用于细菌生长的快速准确评估。