Romans-Fuertes Patricia, Sondergaard Teis Esben, Sandmann Manuela Ilse Helga, Wollenberg Rasmus Dam, Nielsen Kristian Fog, Hansen Frederik T, Giese Henriette, Brodersen Ditlev Egeskov, Sørensen Jens Laurids
Department of Molecular Biology and Genetics, NANORIPES Centre for Natural Non-Ribosomal Peptide Synthesis, Aarhus University, Gustav Wieds Vej 10c, 8000, Aarhus C, Denmark.
Department of Chemistry and Bioscience, Aalborg University, Fredrik Bajers Vej 7H, 9220, Aalborg East, Denmark.
Curr Genet. 2016 Nov;62(4):799-807. doi: 10.1007/s00294-016-0584-4. Epub 2016 Mar 2.
Sansalvamide is a cyclic pentadepsipeptide produced by Fusarium solani and has shown promising results as potential anti-cancer drug. The biosynthetic pathway has until now remained unidentified, but here we used an Agrobacterium tumefaciens-mediated transformation (ATMT) approach to generate knockout mutants of two candidate non-ribosomal peptide synthetases (NRPS29 and NRPS30). Comparative studies of secondary metabolites in the two deletion mutants and wild type confirmed the absence of sansalvamide in the NRPS30 deletion mutant, implicating this synthetase in the biosynthetic pathway for sansalvamide. Sansalvamide is structurally related to the cyclic hexadepsipeptide destruxin, which both contain an α-hydroxyisocaproic acid (HICA) unit. A gene cluster responsible for destruxin production has previously been identified in Metarhizium robertsii together with a hypothetical biosynthetic pathway. Using comparative bioinformatic analyses of the catalytic domains in the destruxin and sansalvamide NRPSs, we were able to propose a model for sansalvamide biosynthesis. Orthologues of the gene clusters were also identified in species from several other genera including Acremonium chrysogenum and Trichoderma virens, which suggests that the ability to produce compounds related to destruxin and sansalvamide is widespread.
桑萨尔瓦胺是由茄病镰刀菌产生的一种环状五聚缩肽,作为一种潜在的抗癌药物已显示出有前景的结果。到目前为止,其生物合成途径仍未明确,但在此我们使用了根癌农杆菌介导的转化(ATMT)方法来生成两个候选非核糖体肽合成酶(NRPS29和NRPS30)的敲除突变体。对这两个缺失突变体和野生型中次生代谢产物的比较研究证实,NRPS30缺失突变体中不存在桑萨尔瓦胺,这表明该合成酶参与了桑萨尔瓦胺的生物合成途径。桑萨尔瓦胺在结构上与环状六聚缩肽 destruxin 相关,二者都含有α-羟基异己酸(HICA)单元。先前已在罗伯茨绿僵菌中鉴定出负责destruxin 产生的基因簇以及一条假定的生物合成途径。通过对 destruxin 和桑萨尔瓦胺NRPSs 中催化结构域的比较生物信息学分析,我们能够提出一个桑萨尔瓦胺生物合成的模型。在包括产黄青霉和绿色木霉在内的其他几个属的物种中也鉴定出了该基因簇的直系同源物,这表明产生与 destruxin 和桑萨尔瓦胺相关化合物的能力广泛存在。