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Ultrahigh-throughput screening in drop-based microfluidics for directed evolution

机译:基于液滴的微流控技术中的超高通量筛选,用于定向进化

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摘要

The explosive growth in our knowledge of genomes, proteomes, and metabolomes is driving ever-increasing fundamental understanding of the biochemistry of life, enabling qualitatively new studies of complex biological systems and their evolution. This knowledge also drives modern biotechnologies, such as molecular engineering and synthetic biology, which have enormous potential to address urgent problems, including developing potent new drugs and providing environmentally friendly energy. Many of these studies, however, are ultimately limited by their need for even-higher-throughput measurements of biochemical reactions. We present a general ultrahigh-throughput screening platform using drop-based microfluidics that overcomes these limitations and revolutionizes both the scale and speed of screening. We use aqueous drops dispersed in oil as picoliter-volume reaction vessels and screen them at rates of thousands per second. To demonstrate its power, we apply the system to directed evolution, identifying new mutants of the enzyme horseradish peroxidase exhibiting catalytic rates more than 10 times faster than their parent, which is already a very efficient enzyme. We exploit the ultrahigh throughput to use an initial purifying selection that removes inactive mutants; we identify ~100 variants comparable in activity to the parent from an initial population of ~10~7. After a second generation of mutagenesis and high-stringency screening, we identify several significantly improved mutants, some approaching diffusion-limited efficiency. In total, we screen ~10~8 individual enzyme reactions in only 10 h, using <15OμL of total reagent volume; compared to state-of-the-art robotic screening systems, we perform the entire assay with a 1,000-fold increase in speed and a 1-million-fold reduction in cost.
机译:我们对基因组,蛋白质组和代谢组学知识的爆炸性增长,正在推动人们对生命生物化学的基础知识不断增长,从而可以对复杂的生物系统及其进化进行定性的新研究。这些知识还推动了现代生物技术的发展,例如分子工程和合成生物学,它们具有巨大的潜力来解决紧急问题,包括开发有效的新药和提供环境友好的能源。然而,这些研究中的许多最终都受到它们对生化反应甚至更高通量测量的需求的限制。我们提出了一种通用的超高通量筛选平台,该平台使用基于液滴的微流控技术克服了这些限制,并彻底改变了筛选的规模和速度。我们使用分散在油中的水滴作为皮升体积反应容器,并以每秒数千次的速度对其进行筛选。为了证明其功能,我们将该系统应用于定向进化,确定了辣根过氧化物酶的新突变体,该突变体的催化速率比其母体快十倍以上,后者已经是一种非常有效的酶。我们利用超高通量来使用最初的纯化选择,以去除无活性的突变体。我们从〜10〜7的初始种群中鉴定出〜100个与亲本具有可比性的变体。经过第二代诱变和高严格性筛选后,我们确定了几个显着改善的突变体,其中一些接近扩散受限的效率。总的来说,我们仅用10小时的总试剂量<15OμL筛选出约10〜8个单独的酶反应;与最先进的机器人筛选系统相比,我们执行整个测定的速度提高了1000倍,成本降低了100万倍。

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  • 作者单位

    Harvard School of Engineering and Applied Sciences, Cambridge, MA 02138 Fluid Discovery, Ltd., Emeryville, CA 94608;

    Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139;

    Harvard School of Engineering and Applied Sciences, Cambridge, MA 02138;

    Harvard School of Engineering and Applied Sciences, Cambridge, MA 02138;

    Harvard School of Engineering and Applied Sciences, Cambridge, MA 02138 Department of Physics, Harvard University, Cambridge, MA 02138;

    Institut de Science et d'Ingenierie Supramoleculaires, Universite de Strasbourg, Centre National de la Recherche Scientifique Unite Mixte de Recherche 7006, 8 allee Gaspard Monge, BP 70028, F-67083 Strasbourg Cedex, France;

    YNano LLC, 14148 Riverdowns South Drive, Midlothian, VA 23113;

    Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139 Departmem of Chemistry, Massachusetts Institute of Technology, Cambridge, MA 02139;

    Institut de Science et d'Ingenierie Supramoleculaires, Universite de Strasbourg, Centre National de la Recherche Scientifique Unite Mixte de Recherche 7006, 8 allee Gaspard Monge, BP 70028, F-67083 Strasbourg Cedex, France;

    Harvard School of Engineering and Applied Sciences, Cambridge, MA 02138 Department of Physics, Harvard University, Cambridge, MA 02138;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    protein engineering; compartmentalization; emulsion; horseradish peroxidase;

    机译:蛋白质工程;分隔乳液辣根过氧化物酶;

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