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FUNCTIONAL PRODUCTION OF TRANSPORTERS FROM BIOMASS-DEGRADING ANAEROBIC FUNGI FOR METABOLIC ENGINEERING

机译:从生物质降解厌氧真菌代谢工程中功能性生产转运蛋白

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Membrane-embedded transporters and receptors are increasingly becoming targets for the metabolic engineering community that aims to enhance the performance and stability of microbial production strains. Anaerobic gut fungi inhabit the digestive tract of herbivores such as cows and sheep, and excel at degrading raw plant biomass into fermentable sugars. Recently, a transcriptomic analysis of three strains of gut fungi suggested that they display a plethora of carbohydrate binding proteins on their surface, including G-protein coupled receptors with a novel architecture; and possess a multitude of small-solute transporters that are of chief biotechnological interest: transporters for sugars, amino acids, lipids, drugs, and metals. Here, we introduced genes encoding gut fungal fluoride transporters into Saccharomyces cerevisiae, and show that with codon optimization, the yeast produce large quantities of functional and correctly membrane-localized transporters capable of bolstering solvent tolerance. We are currently expanding our approach to putative drug-and sugar-transporters and receptors sourced from the anaerobic fungi. These results in part explain the physiology of these understudied fungi, and highlight the critical role that their membrane proteins play towards their existence in competitive, extreme environments. Notably, the work expands on the toolbox of receptor and transporter proteins that can be used to enhance the performance and stability of model microbial cell factory strains.
机译:膜嵌入的转运蛋白和受体正日益成为代谢工程界的目标,代谢工程界旨在提高微生物生产菌株的性能和稳定性。厌氧性肠道真菌栖息在草食动物如牛和绵羊的消化道中,并且擅长将未加工的植物生物质降解为可发酵的糖。最近,对三种肠道真菌菌株的转录组分析表明,它们在其表面上显示出过多的碳水化合物结合蛋白,包括具有新型结构的G蛋白偶联受体。并拥有许多主要生物技术关注的小溶质转运蛋白:糖,氨基酸,脂质,药物和金属的转运蛋白。在这里,我们将编码肠道真菌氟化物转运蛋白的基因引入了酿酒酵母,并显示通过密码子优化,酵母产生了大量能够增强溶剂耐受性的功能性膜定位转运蛋白。目前,我们正在将方法扩展到厌氧性真菌来源的推定药物和糖转运蛋白和受体。这些结果部分解释了这些未被充分研究的真菌的生理学,并突出了它们的膜蛋白在竞争性的极端环境中对其生存所起的关键作用。值得注意的是,这项工作扩展了受体和转运蛋白的工具箱,可用于增强模型微生物细胞工厂菌株的性能和稳定性。

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