Department of Chemistry, University of Illinois, 600 S Mathews Ave, Urbana, IL 61801, United States.
Department of Chemistry, University of Illinois, 600 S Mathews Ave, Urbana, IL 61801, United States; Carl R. Woese Institute for Genomic Biology, University of Illinois, 600 S Mathews Ave, Urbana, IL 61801, United States; Department of Microbiology, University of Illinois, 600 S Mathews Ave, Urbana, IL 61801, United States.
Curr Opin Microbiol. 2018 Oct;45:61-69. doi: 10.1016/j.mib.2018.02.010. Epub 2018 Mar 10.
The threat of antibiotic resistant bacterial infections continues to underscore the need for new treatment options. Historically, small molecule metabolites from microbes have provided a rich source of antibiotic compounds, and as a result, significant effort has been invested in engineering the responsible biosynthetic pathways to generate novel analogs with attractive pharmacological properties. Unfortunately, biosynthetic stringency has limited the capacity of non-ribosomal peptide synthetases and polyketide synthases from producing substantially different analogs in large numbers. Another class of natural products, the ribosomally synthesized and post-translationally modified peptides (RiPPs), have rapidly expanded in recent years with many natively displaying potent antibiotic activity. RiPP biosynthetic pathways are modular and intrinsically tolerant to alternative substrates. Several prominent RiPPs with antibiotic activity will be covered in this review with a focus on their biosynthetic plasticity. While only a few RiPP enzymes have been thoroughly investigated mechanistically, this knowledge has already been harnessed to generate new-to-nature compounds. Through the use of synthetic biology approaches, on-going efforts in RiPP engineering hold great promise in unlocking the potential of this natural product class.
抗生素耐药菌感染的威胁持续凸显出对新型治疗选择的需求。从历史上看,微生物的小分子代谢产物为抗生素化合物提供了丰富的来源,因此,人们投入了大量精力来设计负责的生物合成途径,以生成具有吸引力的药理学特性的新型类似物。不幸的是,生物合成的严格性限制了非核糖体肽合成酶和聚酮合酶大量产生实质上不同类似物的能力。另一类天然产物,核糖体合成和翻译后修饰的肽(RiPPs),近年来迅速扩展,许多天然产物具有很强的抗生素活性。RiPP 生物合成途径具有模块性,并且对替代底物具有内在的耐受性。本文将重点介绍几种具有抗生素活性的重要 RiPP,以探讨其生物合成的可塑性。尽管只有少数 RiPP 酶在机制上得到了深入研究,但这些知识已经被用于生成新的天然化合物。通过使用合成生物学方法,正在进行的 RiPP 工程努力有望挖掘这一天然产物类别的潜力。