Kutschera Alexander, Lamb Jacob J
Phytopathology, Center of Life and Food Sciences Weihenstephan, Technical University of Munich, Munich, Germany.
Department of Electronic Systems & ENERSENSE, NTNU, Trondheim, Norway.
Curr Microbiol. 2018 Feb;75(2):231-236. doi: 10.1007/s00284-017-1370-3. Epub 2017 Oct 11.
Live monitoring of microorganisms growth in liquid medium is a desired parameter for many research fields. A wildly used approach for determining microbial liquid growth quantification is based on light scattering as the result of the physical interaction of light with microbial cells. These measurements are generally achieved using costly table-top instruments; however, a live, reliable, and straight forward instrument constructed using parts that are inexpensive may provide opportunities for many researchers. Here, such an instrument has been constructed and tested. It consists of modular test tube holding chambers, each with a low power monochromatic light-emitting diode, and a monolithic photodiode. A microcontroller connects to all modular chambers to control the diodes, and send the live data to either an LCD screen, or a computer. This work demonstrate that this modular instrument can determine precise cell concentrations for the bacteria Escherichia coli and Pseudomonas syringae pv. tomato DC3000, as well as Saccharomyces cerevisiae yeast.
实时监测液体培养基中微生物的生长情况是许多研究领域期望获得的参数。一种广泛使用的确定微生物液体生长定量的方法是基于光与微生物细胞物理相互作用产生的光散射。这些测量通常使用昂贵的台式仪器来完成;然而,使用廉价部件构建的一种实时、可靠且简单的仪器可能会为许多研究人员提供机会。在此,已构建并测试了这样一种仪器。它由模块化的试管容纳腔组成,每个容纳腔都有一个低功率单色发光二极管和一个单片光电二极管。一个微控制器连接到所有模块化腔室以控制二极管,并将实时数据发送到液晶显示屏或计算机。这项工作表明,这种模块化仪器能够确定大肠杆菌、丁香假单胞菌番茄致病变种DC3000以及酿酒酵母的精确细胞浓度。