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Genetic basis of the highly efficient yeast Kluyveromyces marxianus: complete genome sequence and transcriptome analyses

机译:高效酵母马克斯克鲁维酵母的遗传基础:完整的基因组序列和转录组分析

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Background High-temperature fermentation technology with thermotolerant microbes has been expected to reduce the cost of bioconversion of cellulosic biomass to fuels or chemicals. Thermotolerant Kluyveromyces marxianus possesses intrinsic abilities to ferment and assimilate a wide variety of substrates including xylose and to efficiently produce proteins. These capabilities have been found to exceed those of the traditional ethanol producer Saccharomyces cerevisiae or lignocellulose-bioconvertible ethanologenic Scheffersomyces stipitis. Results The complete genome sequence of K. marxianus DMKU 3-1042 as one of the most thermotolerant strains in the same species has been determined. A comparison of its genomic information with those of other yeasts and transcriptome analysis revealed that the yeast bears beneficial properties of temperature resistance, wide-range bioconversion ability, and production of recombinant proteins. The transcriptome analysis clarified distinctive metabolic pathways under three different growth conditions, static culture, high temperature, and xylose medium, in comparison to the control condition of glucose medium under a shaking condition at 30°C. Interestingly, the yeast appears to overcome the issue of reactive oxygen species, which tend to accumulate under all three conditions. Conclusions This study reveals many gene resources for the ability to assimilate various sugars in addition to species-specific genes in K. marxianus, and the molecular basis of its attractive traits for industrial applications including high-temperature fermentation. Especially, the thermotolerance trait may be achieved by an integrated mechanism consisting of various strategies. Gene resources and transcriptome data of the yeast are particularly useful for fundamental and applied researches for innovative applications.
机译:背景技术具有耐热微生物的高温发酵技术已被期望降低纤维素生物质向燃料或化学物质的生物转化的成本。耐高温马克斯克鲁维酵母具有发酵和吸收包括木糖在内的多种底物并有效生产蛋白质的内在能力。已经发现这些能力超过了传统的乙醇生产商酿酒酵母或木质纤维素可生物转化的产乙醇的酿酒酵母。结果已经确定了同一物种中最耐热的菌株之一马克斯克鲁维酵母DMKU 3-1042的完整基因组序列。将其基因组信息与其他酵母的基因组信息进行比较和转录组分析表明,该酵母具有耐热性,广泛的生物转化能力和重组蛋白产生的有益特性。与葡萄糖培养基在30°C摇动条件下的对照条件相比,转录组分析阐明了在三种不同生长条件下(静态培养,高温和木糖培养基)的独特代谢途径。有趣的是,酵母似乎克服了活性氧种类的问题,活性氧种类倾向于在所有三个条件下积累。结论这项研究揭示了许多基因资源,除了能够吸收马克斯克鲁维酵母中的物种特异性基因外,还具有吸收各种糖的能力,以及其诱人性状的分子基础,可用于包括高温发酵在内的工业应用。特别地,可以通过由各种策略组成的综合机制来实现耐热特性。酵母的基因资源和转录组数据对于创新应用的基础和应用研究特别有用。

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