利用酵母生物发光报告基因在体内监测代谢转化过程中的转录活性。

IF 1.2 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES
Felipe Muñoz-Guzmán, Pablo Quintrel, José Benavides-Parra, Catalina Muñoz-Tapia, Luis F Larrondo, Francisco A Cubillos
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引用次数: 0

摘要

从喜欢的糖源到不太喜欢的糖源的连续糖消耗,代表了酵母的关键代谢适应,这与啤酒发酵等波动环境中的生存特别相关。然而,糖的转变是一个环境变量,很难预测和检测,影响啤酒发酵的结果。该方案描述了一个体内系统,以监测与真巴酵母菌葡萄糖到麦芽糖代谢转移相关的转录激活,适用于不同的野生酵母菌菌株。该系统采用了麦芽糖代谢的episomal生物发光转录报告器,重点关注MAL32,因为它提供了很好的代谢变化读数,正如在酿酒酵母中研究的那样。为此,将酵母菌株转化为含有真丝酵母MAL32调控区的质粒,控制编码萤火虫荧光素e1不稳定版本的基因表达,以及在转化过程中专门使用的潮霉素抗性基因,以确保质粒获得。选择后,转化的酵母细胞可以在非选择条件下培养,因为附体质粒在培养条件下保持稳定长达7天。该系统在复杂的糖环境下进行了微发酵试验,证实了荧光素酶报告基因在代谢转变中的有效性。定期收集样品并用光度计进行分析,提供对酵母反应的持续见解。虽然广泛适用,但该方案对于评估发酵条件下的酵母性能特别有价值,其中代谢变化构成了重大挑战。此外,这种方法可以通过选择替代启动子来探索对环境变化的更广泛的响应,从而允许对各种工业应用的野生酵母菌株进行表征和优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In Vivo Monitoring of Transcriptional Activity During Metabolic Transition Using a Bioluminescent Reporter in Yeast.

Sequential sugar consumption, from a preferred sugar source to a less preferred one, represents a critical metabolic adaptation in yeast, which is particularly relevant for survival in fluctuating environments such as those found in beer fermentation. However, sugar transitions are an environmental variable that is challenging to predict and detect, impacting the outcome of beer fermentations. This protocol describes an in vivo system to monitor transcriptional activation associated with the glucose-to-maltose metabolic shift in Saccharomyces eubayanus that applies to different wild Saccharomyces yeast strains. The system employs an episomal bioluminescent transcriptional reporter for maltose metabolism, focusing on MAL32, since it provides a good readout for metabolic shifts, as studied in S. cerevisiae. For this, yeast strains were transformed with plasmids containing the MAL32 regulatory region from S. eubayanus, controlling the expression of a gene encoding for a destabilized version of firefly luciferase1, and a hygromycin resistance gene used exclusively during transformation to ensure plasmid acquisition. Following selection, transformed yeast cells can be cultured under non-selective conditions, as the episomal plasmid remains stable in culture conditions for up to 7 days. This system was validated under a complex sugar environment in microfermentation assays, confirming the effectiveness of the luciferase reporter in informing metabolic transitions. Samples were collected regularly and analyzed with a luminometer, providing continuous insights into yeast responses. While broadly applicable, this protocol is particularly valuable for assessing yeast performance under fermentation conditions, where metabolic changes pose a significant challenge. Additionally, this methodology can be adapted by selecting alternative promoters to explore a broader range of responses to environmental changes, allowing characterization as well as optimization of wild yeast strains for diverse industrial applications.

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来源期刊
Jove-Journal of Visualized Experiments
Jove-Journal of Visualized Experiments MULTIDISCIPLINARY SCIENCES-
CiteScore
2.10
自引率
0.00%
发文量
992
期刊介绍: JoVE, the Journal of Visualized Experiments, is the world''s first peer reviewed scientific video journal. Established in 2006, JoVE is devoted to publishing scientific research in a visual format to help researchers overcome two of the biggest challenges facing the scientific research community today; poor reproducibility and the time and labor intensive nature of learning new experimental techniques.
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