Junior Research Group Biosynthetic Design of Natural Products, Leibniz Institute for Natural Product Research and Infection Biology (HKI) e.V., Beutenbergstr. 11a, 07745 Jena, Germany.
Junior Research Group Biosynthetic Design of Natural Products, Leibniz Institute for Natural Product Research and Infection Biology (HKI) e.V., Beutenbergstr. 11a, 07745 Jena, Germany.
Cell Chem Biol. 2021 Feb 18;28(2):221-227.e7. doi: 10.1016/j.chembiol.2020.11.004. Epub 2020 Nov 24.
Diffusive escape of intermediates limits the rate enhancement that nanocontainers or macromolecular scaffolds can provide for artificial biocatalytic cascades. Nonribosomal peptide synthetases (NRPSs) naturally form gigantic assembly lines and prevent escape by covalently tethering intermediates. Here, we have built DNA-templated NRPS (DT-NRPS) by adding zinc-finger tags to split NRPS modules. The zinc fingers direct the NRPS modules to 9-bp binding sites on a DNA strand, where they form a catalytically active enzyme cascade. Geometric constraints of the DT-NRPSs were investigated using the template DNA as a molecular ruler. Up to four DT-NRPS modules were assembled on DNA to synthesize peptides. DT-NRPSs outperform previously reported DNA-templated enzyme cascades in terms of DNA acceleration, which demonstrates that covalent intermediate channeling is possible along the DNA template. Attachment of assembly line enzymes to a DNA scaffold is a promising catalytic strategy for the sequence-controlled biosynthesis of nonribosomal peptides and other polymers.
扩散逃逸的中间体限制了纳米容器或高分子支架为人工生物催化级联提供的速率增强。非核糖体肽合酶(NRPSs)自然形成巨大的装配线,并通过共价键连接中间体来防止逃逸。在这里,我们通过在分裂 NRPS 模块上添加锌指标签来构建 DNA 模板化 NRPS(DT-NRPS)。锌指将 NRPS 模块引导到 DNA 链上的 9 个碱基结合位点,在那里它们形成具有催化活性的酶级联。使用模板 DNA 作为分子标尺来研究 DT-NRPS 的几何约束。多达四个 DT-NRPS 模块在 DNA 上组装以合成肽。DT-NRPS 在 DNA 加速方面优于以前报道的 DNA 模板酶级联,这表明沿着 DNA 模板进行共价中间通道是可能的。将装配线酶附着在 DNA 支架上是一种很有前途的催化策略,可用于非核糖体肽和其他聚合物的序列控制生物合成。