首页> 外文期刊>JALA: Journal of the Association for Laboratory Automation >Design and Construction of a First-Generation High-Throughput Integrated Robotic Molecular Biology Platform for Bioenergy Applications
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Design and Construction of a First-Generation High-Throughput Integrated Robotic Molecular Biology Platform for Bioenergy Applications

机译:用于生物能源应用的第一代高通量集成机器人分子生物学平台的设计与构建

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The molecular biological techniques for plasmid-based assembly and cloning of gene open reading frames are essential for elucidating the function of the proteins encoded by the genes. High-throughput integrated robotic molecular biology platforms that have the capacity to rapidly clone and express heterologous gene open reading frames in bacteria and yeast and to screen large numbers of expressed proteins for optimized function are an important technology for improving microbial strains for biofuel production. The process involves the production of full-length complementary DNA libraries as a source of plasmid-based clones to express the desired proteins in active form for determination of their functions. Proteins that were identified by high-throughput screening as having desired characteristics are overexpressed in microbes to enable them to perform functions that will allow more cost-effective and sustainable production of biofuels. Because the plasmid libraries are composed of several thousand unique genes, automation of the process is essential. This review describes the design and implementation of an automated integrated programmable robotic workcell capable of producing complementary DNA libraries, colony picking, isolating plasmid DNA, transforming yeast and bacteria, expressing protein, and performing appropriate functional assays. These operations will allow tailoring microbial strains to use renewable feedstocks for production of biofuels, bioderived chemicals, fertilizers, and other coproducts for profitable and sustainable biorefineries.
机译:基于质粒的组装和基因开放阅读框的克隆的分子生物学技术对于阐明基因编码的蛋白质的功能至关重要。具有高通量的机器人分子生物学综合平台,能够快速克隆和表达细菌和酵母中的异源基因开放阅读框,并筛选大量表达的蛋白质以优化功能,这是改善微生物菌株以生产生物燃料的重要技术。该方法涉及全长互补DNA文库的生产,作为基于质粒的克隆的来源,以活性形式表达所需蛋白质以测定其功能。通过高通量筛选鉴定出的具有所需特性的蛋白质在微生物中过表达,从而使其能够发挥功能,从而可以更具成本效益和可持续地生产生物燃料。由于质粒文库由数千个独特基因组成,因此自动化过程至关重要。这篇综述描述了自动集成的可编程机器人工作单元的设计和实现,该工作单元能够产生互补的DNA库,集落采摘,分离质粒DNA,转化酵母和细菌,表达蛋白质并进行适当的功能分析。这些操作将允许定制微生物菌株,以将可再生原料用于生产生物燃料,生物衍生的化学品,化肥以及其他副产品,以实现盈利和可持续的生物精炼厂。

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