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ENGINEERED POLYKETIDE SYNTHASES FOR PRODUCTION OF COMMODITY AND SPECIALTY CHEMICALS

机译:工程化的多肽合成酶用于生产商品和特种化学品

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摘要

Engineered modular polyketide synthases (PKSs) have the potential to be an extraordinarily effective retrosynthesis platform. Native PKSs assemble and tailor simple, readily available cellular acyl-CoAs into large, complex, chiral molecules. By successfully rearranging existing polyketide modules and domains, one can exquisitely control chemical structure from DNA sequence alone. As an example of the diverse biosynthetic potential of PKSs, we have concluded that approximately 20 of the roughly 150 commodity chemicals tracked by the petrochemical market information provider ICIS could be produced by mixing and matching naturally occurring PKS domains. To form these chemicals, engineered PKSs load acyl- CoAs, perform a programmed number of extension reactions, and then release products using previously published mechanisms. However, this potential has only just begun to be realized as the compounds that have been made using engineered PKSs represent a small fraction of the potentially accessible chemical space. In my talk, I will highlight work from our laboratory in which we have engineered polyketide synthases to produce a variety of commodity and specialty chemicals and expressed these engineered PKSs in a variety of Streptomyces for production of these molecules from sugars and other inexpensive starting materials.
机译:工程化的模块化聚酮化合物合酶(PKS)具有成为非常有效的逆向合成平台的潜力。天然PKS可将简单易用的细胞酰基辅酶A组装并定制为大的,复杂的手性分子。通过成功地重新排列现有的聚酮化合物模块和结构域,可以仅从DNA序列中精确控制化学结构。作为PKS多样化生物合成潜力的一个例子,我们得出的结论是,石化市场信息提供商ICIS跟踪的大约150种商品化学品中,大约有20种可以通过混合和匹配天然存在的PKS域来生产。为了形成这些化学物质,经过工程设计的PKS会加载酰基辅酶A,执行一定数量的延伸反应,然后使用以前发布的机制释放产品。但是,这种潜力才刚刚开始被认识到,因为使用工程PKS生产的化合物仅占潜在可访问化学空间的一小部分。在我的演讲中,我将重点介绍我们实验室中的工程,其中我们对聚酮化合物合酶进行了工程设计,以生产各种商品和特种化学品,并在各种链霉菌中表达了这些经工程设计的PKS,以从糖和其他廉价的起始原料生产这些分子。

著录项

  • 来源
    《Microbial engineering》|2018年|19-19|共1页
  • 会议地点 Santa Fe(US)
  • 作者

    Jay Keasling;

  • 作者单位

    University of California, Biological Systems Engineering Division, Lawrence Berkeley National Laboratory, Joint BioEnergy Institute;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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