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Complete genome sequence and transcriptome regulation of the pentose utilizing yeast Sugiyamaella lignohabitans

机译:利用酵母Sugiyamaella lignohabitans对戊糖进行完整的基因组序列和转录组调控

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Efficient conversion of hexoses and pentoses into value-added chemicals represents one core step for establishing economically feasible biorefineries from lignocellulosic material. While extensive research efforts have recently provided advances in the overall process performance, the quest for new microbial cell factories and novel enzymes sources is still open. As demonstrated recently the yeast Sugiyamaella lignohabitans (formerly Candida lignohabitans) represents a promising microbial cell factory for the production of organic acids from lignocellulosic hydrolysates. We report here the de novo genome assembly of S. lignohabitans using the Single Molecule Real-Time platform, with gene prediction refined by using RNA-seq. The sequencing revealed a 15.98 Mb genome, subdivided into four chromosomes. By phylogenetic analysis, Blastobotrys (Arxula) adeninivorans and Yarrowia lipolyticawere found to be close relatives of S. lignohabitans. Differential gene expression was evaluated in typical growth conditions on glucose and xylose and allowed a first insight into the transcriptional response of S. lignohabitans to different carbon sources and different oxygenation conditions. Novel sequences for enzymes and transporters involved in the central carbon metabolism, and therefore of potential biotechnological interest, were identified. These data open the way for a better understanding of the metabolism of S. lignohabitans and provide resources for further metabolic engineering.
机译:将己糖和戊糖有效转化为增值化学品是从木质纤维素材料建立经济可行的生物精炼厂的核心步骤。尽管最近的大量研究工作在整体工艺性能方面取得了进步,但对新型微生物细胞工厂和新型酶源的探索仍在进行中。如最近所证实的,酵母Sugiyamaella木质素细菌(以前称为Candida lignohabitans)代表了一种有前途的微生物细胞工厂,用于从木质纤维素水解产物生产有机酸。我们在这里报告使用单分子实时平台的木糖链球菌的从头基因组装配,并通过使用RNA-seq完善基因预测。测序揭示了一个15.98 Mb基因组,分为四个染色体。通过系统发育分析,发现Blastobotrys(Arxula)adeninivorans和解脂耶氏酵母(Yarrowia lipolyticawere)是木糖链球菌的近亲。在典型的生长条件下,在葡萄糖和木糖上评估了差异基因的表达,并首次了解了木糖链霉菌对不同碳源和不同氧合条件的转录反应。确定了参与中央碳代谢的酶和转运蛋白的新序列,因此具有潜在的生物技术意义。这些数据为更好地了解木糖链霉菌的代谢开辟了道路,并为进一步的代谢工程提供了资源。

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