Zheng Ziyang, Ren Daan, Ko Yeonjin, Liu Hung-Wen
Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.
Division of Chemical Biology and Medicinal Chemistry, College of Pharmacy, University of Texas at Austin, Austin, Texas 78712, United States.
J Am Chem Soc. 2025 Apr 2;147(13):11425-11431. doi: 10.1021/jacs.5c01277. Epub 2025 Mar 19.
Formycin A and pyrazofurin are two naturally occurring pyrazole-derived -nucleosides with antibacterial and antiviral activities. While earlier studies have established the chemistry of -glycosidic bond formation as well as the subsequent steps in the biosynthesis of formycin A and pyrazofurin, how the pyrazole ring itself is constructed remains elusive. While N-N bond formation in the pyrazole ring was previously reported to involve coupling of -hydroxylated l-lysine and l-glutamic acid catalyzed by the hydrazine synthetase PyfG, herein PyfG and its homologue ForJ are shown instead to recognize d-glutamate instead of l-glutamate. The hydrazine product of ForJ/PyfG catalysis then releases α-hydrazino d-glutamic acid upon processing by the NAD-dependent oxidoreductase ForL. Furthermore, -acylation of α-hydrazino d-glutamate with an amino acid catalyzed by the ATP-grasp ligase ForM/PyfJ is indispensable for recognition by the FAD-dependent oxidoreductase ForR/PyfK to perform dehydrogenation of the Cα-N bond and thereby form a hydrazone intermediate. This work not only demonstrates that d-glutamic acid is the correct substrate for hydrazine biosynthesis but also reveals a cryptic -acylation step in the assembly of the pyrazole core. These results thus provide significant insights into the biosynthesis of pyrazole rings that are rarely seen in natural products.
间型霉素A和吡唑呋喃是两种天然存在的源自吡唑的β-核苷,具有抗菌和抗病毒活性。虽然早期研究已经确定了β-糖苷键形成的化学过程以及间型霉素A和吡唑呋喃生物合成的后续步骤,但吡唑环本身是如何构建的仍然不清楚。虽然之前报道吡唑环中N-N键的形成涉及由肼合成酶PyfG催化的β-羟基化L-赖氨酸和L-谷氨酸的偶联,但在此表明PyfG及其同源物ForJ识别的是D-谷氨酸而非L-谷氨酸。ForJ/PyfG催化产生的肼产物在由NAD依赖性氧化还原酶ForL加工后释放出α-肼基D-谷氨酸。此外,由ATP-抓握连接酶ForM/PyfJ催化的α-肼基D-谷氨酸与一种氨基酸的β-酰化对于被FAD依赖性氧化还原酶ForR/PyfK识别以进行Cα-N键的脱氢从而形成腙中间体是必不可少的。这项工作不仅证明D-谷氨酸是肼生物合成的正确底物,还揭示了吡唑核心组装过程中一个隐秘的β-酰化步骤。因此,这些结果为天然产物中罕见的吡唑环生物合成提供了重要见解。