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Developing a broad-range promoter set for metabolic engineering in the thermotolerant yeast Kluyveromyces marxianus

机译:在热调节酵母Kluyveromyces Marxianus中开发用于代谢工程的广泛推动者。

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摘要

Kluyveromyces marxianus is an emerging host for metabolic engineering. This thermotolerant yeast is the fastest growing eukaryote, has high flux through the TCA cycle, and can metabolize a broad range of C5, C6, and C12 carbon sources. In comparison to the common host Saccharomyces cerevisiae, this non-conventional yeast suffers from a lack of metabolic engineering tools to control gene expression over a wide transcriptional range. To address this issue, we designed a library of 25 native-derived promoters from K. marxanius CBS6556 that spans 87-fold transcriptional strength under glucose metabolism. Six promoters from the library were further characterized in both glucose and xylose as well as across various temperatures from 30 to 45 ​°C. The temperature study revealed that in most cases EGFP expression decreased with elevating temperature; however, two promoters, PSSA3 and PADH1, increased expression above 40 ​°C in both xylose and glucose. The six-promoter set was also validated in xylose for triacetic acid lactone (TAL) production. By controlling the expression level of heterologous 2-pyrone synthase (2-PS), the specific TAL titer increased over 8-fold at 37 ​°C. Cultures at 41 ​°C exhibited a similar TAL biosynthesis capability, while at 30 ​°C TAL levels were lower. Taken together, these results advance the metabolic engineering tool set in K. marxianus and further develop this new host for chemical biosynthesis.
机译:Kluyveromyces Marxianus是一种新兴的代谢工程主持人。该热调节酵母是一种快速增长的真核生物,通过TCA循环具有高通量,并且可以代谢广泛的C5,C6和C12碳源。与常见的宿主酿酒酵母相比,这种非常规酵母缺乏缺乏代谢工程工具来控制在宽转录范围内的基因表达。为了解决这个问题,我们设计了来自K.Marxanius CBS6556的25个本土推导剂的库,其在葡萄糖代谢下跨越87倍的转录强度。来自文库的六种启动子进一步表征在葡萄糖和木糖中,以及跨越30至45℃的各种温度。温度研究表明,在大多数情况下,EGFP表达随着温度的升高而降低;然而,两个启动子,PSSA3和PADH1,在木糖和葡萄糖中增加了40℃以上的表达。六启动子组也验证了三元酸内酯(TAL)生产的木糖中。通过控制异源2-吡喃酮合成酶(2-PS)的表达水平,特定的TAL滴度在37℃下增加8倍。 41°C的培养物表现出类似的TAL生物合成能力,而在30°C的水平下较低。总之,这些结果推进了K.Marxianus的代谢工程工具,并进一步开发了化学生物合成的新宿主。

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