Haase Mona, David Benoit, Paschold Beatrix, Classen Thomas, Schneider Pascal, Pozhydaieva Nadiia, Gohlke Holger, Pietruszka Jörg
Institute for Bioorganic Chemistry & Bioeconomy Science Center (BioSC), Heinrich Heine University Düsseldorf in Forschungszentrum Jülich, 52426 Jülich, Germany.
Institute of Bio- and Geosciences (IBG-4: Bioinformatics) Forschungszentrum Jülich, 52426 Jülich, Germany.
ACS Catal. 2023 Dec 14;14(1):227-236. doi: 10.1021/acscatal.3c04952. eCollection 2024 Jan 5.
Even though pyrroloindoles are widely present in natural products with different kinds of biological activities, their selective synthesis remains challenging with existing tools in organic chemistry, and there is furthermore a demand for stereoselective and mild methods to access this structural motif. Nature uses C3-methyltransferases to form the pyrroloindole framework, starting from the amino acid tryptophan. In the present study, the SAM-dependent methyltransferase StspM1 from sp. HPH0547 is used to build the pyrroloindole structural motif in tryptophan-based diketopiperazines (DKP). The substrate scope of the enzyme regarding different Trp-Trp-DKP isomers was investigated on an experimental and computational level. After further characterization and optimization of the methylation reaction with a design of experiment approach, a preparative scale reaction with the immobilized enzyme including a SAM regeneration system was performed to show the synthetic use of this biocatalytic tool to access the pyrroloindole structural motif.
尽管吡咯并吲哚广泛存在于具有各种生物活性的天然产物中,但利用有机化学的现有工具对其进行选择性合成仍然具有挑战性,此外,还需要立体选择性和温和的方法来构建这种结构基序。自然界利用C3 - 甲基转移酶从氨基酸色氨酸开始形成吡咯并吲哚骨架。在本研究中,来自sp. HPH0547的依赖S-腺苷甲硫氨酸(SAM)的甲基转移酶StspM1被用于在基于色氨酸的二酮哌嗪(DKP)中构建吡咯并吲哚结构基序。在实验和计算层面研究了该酶针对不同Trp - Trp - DKP异构体的底物范围。在用实验设计方法对甲基化反应进行进一步表征和优化后,进行了包括SAM再生系统的固定化酶的制备规模反应,以展示这种生物催化工具在合成中用于构建吡咯并吲哚结构基序的用途。