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跨膜烷单加氧酶的工程改造以改善聚合物前体郁金香素A合成中的关键反应步骤。

Engineering of Transmembrane Alkane Monooxygenases to Improve a Key Reaction Step in the Synthesis of Polymer Precursor Tulipalin A.

作者信息

Nigl Andrea, Delsoglio Veronica, Sovic Lucija, Grgić Marina, Malihan-Yap Lenny, Myrtollari Kamela, Spasic Jelena, Winkler Margit, Oberdorfer Gustav, Taden Andreas, Anić Iva, Kourist Robert

机构信息

Institute of Molecular Biotechnology, Graz University of Technology, Petersgasse 14, Graz, 8010, Austria.

acib GmbH (Austrian Centre of Industrial Biotechnology), Petersgasse 14, Graz, 8010, Austria.

出版信息

Angew Chem Int Ed Engl. 2025 Jun 17;64(25):e202503464. doi: 10.1002/anie.202503464. Epub 2025 May 16.

Abstract

The α-methylene-γ-butyrolactone tulipalin A, a defense compound found in tulips, can polymerize via addition at the vinyl group or via ring-opening polymerization, making it a highly promising monomer for bio-based polymers. Since the biosynthesis of tulipalin A in plants remains elusive, we propose an alternative pathway for its synthesis starting from the terpenoid intermediate isoprenyl acetate. While fungal unspecific peroxygenases showed a preference for the unwanted epoxidation of the exo-olefin group, bacterial alkane monooxygenases were selective for terminal hydroxylation. By combining protein engineering based on de novo structure prediction of the membrane enzymes with cell engineering, the specific activity was increased 6-fold to 1.83 U g . Oxidation of the formed allylic alcohol by a three-enzyme cascade and subsequent lactonization yielded tulipalin A. Our results demonstrate the feasibility of producing the polymer precursor tulipalin A from terpenoid intermediates and provide a solid foundation for future metabolic engineering endeavors.

摘要

α-亚甲基-γ-丁内酯郁金香素A是一种在郁金香中发现的防御化合物,它可以通过乙烯基加成或开环聚合进行聚合,使其成为生物基聚合物极具前景的单体。由于植物中郁金香素A的生物合成仍不清楚,我们提出了一条从萜类中间体乙酸异戊烯酯开始合成它的替代途径。虽然真菌非特异性过氧酶对外烯烃基团的不需要的环氧化表现出偏好,但细菌烷烃单加氧酶对末端羟基化具有选择性。通过基于膜酶的从头结构预测的蛋白质工程与细胞工程相结合,比活性提高了6倍,达到1.83 U g。通过三酶级联氧化形成的烯丙醇并随后内酯化得到郁金香素A。我们的结果证明了从萜类中间体生产聚合物前体郁金香素A的可行性,并为未来的代谢工程努力提供了坚实的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/725f/12171333/b9926ed84567/ANIE-64-e202503464-g002.jpg

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