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Rapid, Heuristic Discovery and Design of Promoter Collections in Non-Model Microbes for Industrial Applications

机译:工业应用非模型微生物的快速,启发式发现和设计

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摘要

Well-characterized promoter collections for synthetic biology applications are not always available in industrially relevant hosts. We developed a broadly applicable method for promoter identification in atypical microbial hosts that requires no a priori understanding of cis-regulatory element structure. This novel approach combines bioinformatic filtering with rapid empirical characterization to expand the promoter toolkit and uses machine learning to improve the understanding of the relationship between DNA sequence and function. Here, we apply the method in Geobacillus thermoglucosidasius, a thermophilic organism with high potential as a synthetic biology chassis for industrial applications. Bioinformatic screening of G. kaustophilus, G. stearothermophilus, G. thermodenitrificans, and G. thermoglucosidasius resulted in the identification of 636 100 bp putative promoters, encompassing the genome-wide design space and lacking known transcription factor binding sites. Eighty of these sequences were characterized in vivo, and activities covered a 2-log range of predictable expression levels. Seven sequences were shown to function consistently regardless of the downstream coding sequence. Partition modeling identified sequence positions upstream of the canonical -35 and -10 consensus motifs that were predicted to strongly influence regulatory activity in Geobacillus, and artificial neural network and partial least squares regression models were derived to assess if there were a simple, forward, quantitative method for in silico prediction of promoter function. However, the models were insufficiently general to predict pre hoc promoter activity in vivo, most probably as a result of the relatively small size of the training data set compared to the size of the modeled design space.
机译:合成生物应用的良好的启动子收集并不总是在工业相关的主机中提供。我们开发了一种广泛适用的方法,用于在非典型微生物宿主中的启动子鉴定,不需要先验地了解顺式调节元件结构。这种新方法将生物信息滤波与快速经验表征结合以扩展启动子工具包,并使用机器学习来改善对DNA序列和功能之间关系的理解。在此,我们在Geobacillus Thermoglucosidasius中应用该方法,嗜热生物,具有高潜力作为工业应用的合成生物底盘。 G.Paustophilus,G. Stearothermophilus,G.Thermodentifificans和G. Thermoglucosidusius的生物信息筛选导致鉴定636 100个BP推定启动子,包括基因组设计空间并缺乏已知的转录因子结合位点。这些序列的八十在体内表征,并且活动涵盖了预测表达水平的2-逻辑范围。显示出七个序列,无论下游编码序列如何均匀地起作用。分区建模鉴定鉴定典型的典型序列位置,预测麦克风植物强烈影响调控活动的典型-35和-10共识基序,并且衍生人工神经网络和部分最小二乘型号,以评估是否有简单,前进,定量促进剂函数硅预测的方法。然而,模型不足以预测体内的Hoc启动子活动,最重要的是与训练数据集的尺寸相比相比,与建模设计空间的大小相比。

著录项

  • 来源
    《ACS Synthetic Biology》 |2019年第5期|共23页
  • 作者单位

    Univ Exeter Coll Life &

    Environm Sci Biosci BioEcon Ctr Stocker Rd Exeter EX4 4QD Devon England;

    Univ Exeter Coll Life &

    Environm Sci Biosci BioEcon Ctr Stocker Rd Exeter EX4 4QD Devon England;

    Univ Exeter Coll Life &

    Environm Sci Biosci BioEcon Ctr Stocker Rd Exeter EX4 4QD Devon England;

    Univ Exeter Coll Life &

    Environm Sci Biosci BioEcon Ctr Stocker Rd Exeter EX4 4QD Devon England;

    Newcastle Univ Sch Nat &

    Environm Sci Devonshire Bldg Newcastle Upon Tyne NE1 7RU Tyne &

    Wear England;

    German Res Ctr Environm Hlth GmbH Helmholtz Zentrum Munchen Plant Genome &

    Syst Biol D-85764 Munich Germany;

    Shell Technol Ctr Houston Biodomain 3333 Highway 6 South Houston TX 77082 USA;

    Univ Exeter Coll Life &

    Environm Sci Biosci BioEcon Ctr Stocker Rd Exeter EX4 4QD Devon England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

    promoter design; modeling; Geobacillus; industrial chassis;

    机译:启动子设计;建模;Geobacillus;工业底盘;

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