Steiniger Charlotte, Hoffmann Sylvester, Mainz Andi, Kaiser Marcel, Voigt Kerstin, Meyer Vera, Süssmuth Roderich D
Fachgebiet Biologische Chemie , Institut für Chemie , Technische Universität Berlin , Strasse des 17. Juni 124 , 10623 Berlin , Germany . Email:
Parasite Chemotherapy , Medical Parasitology & Infection Biology , Swiss Tropical and Public Health Institute , Socinstrasse 57 , 4051 Basel , Switzerland.
Chem Sci. 2017 Nov 1;8(11):7834-7843. doi: 10.1039/c7sc03093b. Epub 2017 Sep 25.
Nonribosomal peptide synthetases represent potential platforms for the design and engineering of structurally complex peptides. While previous focus has been centred mainly on bacterial systems, fungal synthetases assembling drugs like the antifungal echinocandins, the antibacterial cephalosporins or the anthelmintic cyclodepsipeptide (CDP) PF1022 await in-depth exploitation. As various mechanistic features of fungal CDP biosynthesis are only partly understood, effective engineering of NRPSs has been severely hampered. By combining protein truncation, expression and combinatorial swapping, we assigned important functional segments of fungal CDP synthetases and assessed their biosynthetic capabilities. Hence, artificial assembly line components comprising of up to three different synthetases were generated. Using as a heterologous expression host, we obtained new-to-nature octa-enniatin (4 mg L) and octa-beauvericin (10.8 mg L), as well as high titers of the hybrid CDP hexa-bassianolide (1.3 g L) with an engineered ring size. The hybrid compounds showed up to 12-fold enhanced antiparasitic activity against and compared to the reference drugs miltefosine and benznidazole, respectively. Our findings thus contribute to a rational engineering of iterative nonribosomal assembly lines.
非核糖体肽合成酶是设计和改造结构复杂肽的潜在平台。虽然此前的研究主要集中在细菌系统,但组装抗真菌棘白菌素、抗菌头孢菌素或驱虫环缩肽(CDP)PF1022等药物的真菌合成酶有待深入开发。由于真菌CDP生物合成的各种机制特征仅部分为人所知,NRPSs的有效工程改造受到严重阻碍。通过结合蛋白质截短、表达和组合交换,我们确定了真菌CDP合成酶的重要功能片段,并评估了它们的生物合成能力。因此,产生了由多达三种不同合成酶组成的人工装配线组件。以作为异源表达宿主,我们获得了新型的八恩镰孢菌素(4毫克/升)和八博韦里霉素(10.8毫克/升),以及高产量的具有工程化环大小的杂合CDP六巴西诺内酯(1.3克/升)。与参考药物米替福新和苯硝唑相比,这些杂合化合物对和的抗寄生虫活性分别提高了12倍。因此,我们的研究结果有助于对迭代非核糖体装配线进行合理的工程改造。