Czajka Jeffrey J, Kambhampati Shrikaar, Tang Yinjie J, Wang Yechun, Allen Doug K
Department of Energy, Environmental and Chemical Engineering, Washington University, St. Louis, MO, USA.
Donald Danforth Plant Science Center, St. Louis, MO, USA.
iScience. 2020 Feb 21;23(2):100854. doi: 10.1016/j.isci.2020.100854. Epub 2020 Jan 22.
Targeted metabolite analysis in combination with C-tracing is a convenient strategy to determine pathway activity in biological systems; however, metabolite analysis is limited by challenges in separating and detecting pathway intermediates with current chromatographic methods. Here, a hydrophilic interaction chromatography tandem mass spectrometry approach was developed for improved metabolite separation, isotopologue analysis, and quantification. The physiological responses of a Yarrowia lipolytica strain engineered to produce ∼400 mg/L α-ionone and temporal changes in metabolism were quantified (e.g., mevalonate secretion, then uptake) indicating bottleneck shifts in the engineered pathway over the course of fermentation. Dynamic labeling results indicated limited tricarboxylic acid cycle label incorporation and, combined with a measurable ATP shortage during the high ionone production phase, suggested that electron transport and oxidative phosphorylation may limit energy supply and strain performance. The results provide insights into terpenoid pathway metabolic dynamics of non-model yeasts and offer guidelines for sensor development and modular engineering.
将靶向代谢物分析与碳追踪相结合是确定生物系统中途径活性的便捷策略;然而,代谢物分析受到当前色谱方法在分离和检测途径中间体方面的挑战的限制。在此,开发了一种亲水相互作用色谱串联质谱方法,以改善代谢物分离、同位素异构体分析和定量。对工程改造后可产生约400mg/Lα-紫罗兰酮的解脂耶氏酵母菌株的生理反应和代谢的时间变化进行了定量分析(例如,甲羟戊酸的分泌,然后是摄取),表明在发酵过程中工程途径中的瓶颈发生了转移。动态标记结果表明三羧酸循环标记掺入有限,并且在高紫罗兰酮生产阶段伴随着可测量的ATP短缺,这表明电子传递和氧化磷酸化可能会限制能量供应和菌株性能。这些结果为非模式酵母的萜类途径代谢动力学提供了见解,并为传感器开发和模块化工程提供了指导。