马氏克鲁维菌蛋白表达新启动子和终止子的鉴定及其代谢工程应用

IF 3.7 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Metabolic Engineering Communications Pub Date : 2021-06-01 DOI:10.1016/j.mec.2020.e00160
Pradeep Kumar , Debendra Kumar Sahoo , Deepak Sharma
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引用次数: 3

摘要

马氏酵母菌已成为一种潜在的生物技术应用酵母菌株。然而,可用的遗传工具数量有限,阻碍了这种酵母的广泛使用。在目前的研究中,我们通过鉴定新的启动子和终止子,扩大了分子工具箱,以增加K. marxianus中重组蛋白的表达。通过分析已有的转录组学数据,鉴定出基因表达活性最高的前10个启动子。我们使用eGFP作为报告蛋白,在不同温度和碳源下进一步表征和比较了这些鉴定的启动子的强度。为了检测驱动蛋白表达的调控区域,设计了两个选定的强启动子的连续截短版本,并检测了它们驱动eGFP蛋白表达的能力。这两个启动子的活性通过不同组合的方式进一步增强。我们进一步利用鉴定出的编码强启动子的DNA盒在马氏酵母代谢工程中增强β-半乳糖苷酶活性。因此,本研究提供了一套新的启动子和终止子,以及改造的马氏乳杆菌菌株,使其在奶酪乳清和牛奶等需要乳糖降解的应用中得到更广泛的应用。
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The identification of novel promoters and terminators for protein expression and metabolic engineering applications in Kluyveromyces marxianus

The K. marxianus has emerged as a potential yeast strain for various biotechnological applications. However, the limited number of available genetic tools has hindered the widespread usage of this yeast. In the current study we have expanded the molecular tool box by identifying novel sets of promoters and terminators for increased recombinant protein expression in K. marxianus. The previously available transcriptomic data were analyzed to identify top 10 promoters of highest gene expression activity. We further characterized and compared strength of these identified promoters using eGFP as a reporter protein, at different temperatures and carbon sources. To examine the regulatory region driving protein expression, serially truncated shorter versions of two selected strong promoters were designed, and examined for their ability to drive eGFP protein expression. The activities of these two promoters were further enhanced using different combinations of native transcription terminators of K. marxianus. We further utilized the identified DNA cassette encoding strong promoter in metabolic engineering of K. marxianus for enhanced β-galactosidase activity. The present study thus provides novel sets of promoters and terminators as well as engineered K. marxianus strain for its wider utility in applications requiring lactose degradation such as in cheese whey and milk.

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来源期刊
Metabolic Engineering Communications
Metabolic Engineering Communications Medicine-Endocrinology, Diabetes and Metabolism
CiteScore
13.30
自引率
1.90%
发文量
22
审稿时长
18 weeks
期刊介绍: Metabolic Engineering Communications, a companion title to Metabolic Engineering (MBE), is devoted to publishing original research in the areas of metabolic engineering, synthetic biology, computational biology and systems biology for problems related to metabolism and the engineering of metabolism for the production of fuels, chemicals, and pharmaceuticals. The journal will carry articles on the design, construction, and analysis of biological systems ranging from pathway components to biological complexes and genomes (including genomic, analytical and bioinformatics methods) in suitable host cells to allow them to produce novel compounds of industrial and medical interest. Demonstrations of regulatory designs and synthetic circuits that alter the performance of biochemical pathways and cellular processes will also be presented. Metabolic Engineering Communications complements MBE by publishing articles that are either shorter than those published in the full journal, or which describe key elements of larger metabolic engineering efforts.
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