首页> 外文期刊>Applied Microbiology >Light-Controlled Cell Factories: Employing Photocaged Isopropyl-β-d-Thiogalactopyranoside for Light-Mediated Optimization of lac Promoter-Based Gene Expression and (+)-Valencene Biosynthesis in Corynebacterium glutamicum
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Light-Controlled Cell Factories: Employing Photocaged Isopropyl-β-d-Thiogalactopyranoside for Light-Mediated Optimization of lac Promoter-Based Gene Expression and (+)-Valencene Biosynthesis in Corynebacterium glutamicum

机译:光控细胞工厂:使用光笼异丙基-β-d-硫代吡喃半乳糖苷在谷氨酸棒杆菌中基于lac启动子的基因表达和(+)-Valencene生物合成的光介导优化

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Precise control of microbial gene expression resulting in a defined, fast, and homogeneous response is of utmost importance for synthetic bio(techno)logical applications. However, even broadly applied biotechnological workhorses, such as Corynebacterium glutamicum , for which induction of recombinant gene expression commonly relies on the addition of appropriate inducer molecules, perform moderately in this respect. Light offers an alternative to accurately control gene expression, as it allows for simple triggering in a noninvasive fashion with unprecedented spatiotemporal resolution. Thus, optogenetic switches are promising tools to improve the controllability of existing gene expression systems. In this regard, photocaged inducers, whose activities are initially inhibited by light-removable protection groups, represent one of the most valuable photoswitches for microbial gene expression. Here, we report on the evaluation of photocaged isopropyl-β-d-thiogalactopyranoside (IPTG) as a light-responsive control element for the frequently applied tac -based expression module in C. glutamicum . In contrast to conventional IPTG, the photocaged inducer mediates a tightly controlled, strong, and homogeneous expression response upon short exposure to UV-A light. To further demonstrate the unique potential of photocaged IPTG for the optimization of production processes in C. glutamicum , the optogenetic switch was finally used to improve biosynthesis of the growth-inhibiting sesquiterpene (+)-valencene, a flavoring agent and aroma compound precursor in food industry. The variation in light intensity as well as the time point of light induction proved crucial for efficient production of this toxic compound.IMPORTANCE Optogenetic tools are light-responsive modules that allow for a simple triggering of cellular functions with unprecedented spatiotemporal resolution and in a noninvasive fashion. Specifically, light-controlled gene expression exhibits an enormous potential for various synthetic bio(techno)logical purposes. Before our study, poor inducibility, together with phenotypic heterogeneity, was reported for the IPTG-mediated induction of lac -based gene expression in Corynebacterium glutamicum . By applying photocaged IPTG as a synthetic inducer, however, these drawbacks could be almost completely abolished. Especially for increasing numbers of parallelized expression cultures, noninvasive and spatiotemporal light induction qualifies for a precise, homogeneous, and thus higher-order control to fully automatize or optimize future biotechnological applications.
机译:对于合成生物(技术)应用而言,精确控制微生物基因表达以产生明确,快速和均一的响应至关重要。然而,就此而言,即使重组技术的诱导通常依赖于添加适当的诱导剂分子的广泛应用的生物技术主力,例如谷氨酸棒杆菌,对它们的诱导也中等。光提供了一种精确控制基因表达的替代方法,因为它允许以无创方式以空前的时空分辨率进行简单触发。因此,光遗传学开关是改善现有基因表达系统可控性的有前途的工具。在这方面,其活性最初被可光除去的保护基团抑制的光笼诱导剂代表了用于微生物基因表达的最有价值的光开关之一。在这里,我们报道了光笼装的异丙基-β-d-硫代吡喃半乳糖吡喃糖苷(IPTG)作为光响应控制元件的评估,该元件是谷氨酸棒杆菌中常用的基于tac的表达模块。与常规IPTG相反,光笼罩诱导剂在短时间暴露于UV-A光后会介导严格控制,强烈且均一的表达响应。为了进一步证明光笼式IPTG在优化谷氨酸棒杆菌生产过程中的独特潜力,光遗传转换最终用于改善食品中增香剂和香气复合物前体生长抑制倍半萜烯(-)-瓦伦烯的生物合成。行业。光强度的变化以及光诱导的时间点被证明对于有效生产这种有毒化合物至关重要。重要的光遗传学工具是光响应模块,可以以空前的时空分辨率和无创方式简单触发细胞功能。 。特别地,受光控制的基因表达对于各种合成生物(技术)目的具有巨大的潜力。在我们的研究之前,据报道,在谷氨酸棒杆菌中IPTG介导的基于lac的基因表达的诱导性和表型异质性差。但是,通过将光笼式IPTG用作合成诱导剂,几乎可以完全消除这些缺点。尤其是对于数量越来越多的并行表达培养,无创和时空光诱导符合精确,均质的高阶控制的要求,从而可以完全自动化或优化未来的生物技术应用。

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