Adeniran Adebola, Sherer Michael, Tyo Keith E J
Department of Chemical & Biological Engineering, Northwestern University, Evanston, IL, USA.
Department of Chemical & Biological Engineering, Northwestern University, Evanston, IL, USA
FEMS Yeast Res. 2015 Feb;15(1):1-15. doi: 10.1111/1567-1364.12203. Epub 2015 Jan 14.
Yeast-based biosensing (YBB) is an exciting research area, as many studies have demonstrated the use of yeasts to accurately detect specific molecules. Biosensors incorporating various yeasts have been reported to detect an incredibly large range of molecules including but not limited to odorants, metals, intracellular metabolites, carcinogens, lactate, alcohols, and sugars. We review the detection strategies available for different types of analytes, as well as the wide range of output methods that have been incorporated with yeast biosensors. We group biosensors into two categories: those that are dependent upon transcription of a gene to report the detection of a desired molecule and those that are independent of this reporting mechanism. Transcription-dependent biosensors frequently depend on heterologous expression of sensing elements from non-yeast organisms, a strategy that has greatly expanded the range of molecules available for detection by YBBs. Transcription-independent biosensors circumvent the problem of sensing difficult-to-detect analytes by instead relying on yeast metabolism to generate easily detected molecules when the analyte is present. The use of yeast as the sensing element in biosensors has proven to be successful and continues to hold great promise for a variety of applications.
基于酵母的生物传感(YBB)是一个令人兴奋的研究领域,因为许多研究已经证明了利用酵母来准确检测特定分子。据报道,包含各种酵母的生物传感器能够检测范围极其广泛的分子,包括但不限于气味剂、金属、细胞内代谢物、致癌物、乳酸、酒精和糖类。我们回顾了可用于不同类型分析物的检测策略,以及已与酵母生物传感器结合使用的广泛输出方法。我们将生物传感器分为两类:一类依赖于基因转录来报告所需分子的检测,另一类则独立于这种报告机制。依赖转录的生物传感器通常依赖于非酵母生物体传感元件的异源表达,这一策略极大地扩展了YBB可检测分子的范围。不依赖转录的生物传感器通过在分析物存在时依靠酵母代谢产生易于检测的分子,从而规避了检测难检测分析物的问题。事实证明,在生物传感器中使用酵母作为传感元件是成功的,并且在各种应用中仍具有巨大的潜力。