School of Traditional Chinese Materia Medica, Shenyang Pharmaceutical University, Shenyang 110016, Liaoning, China.
Institute of Traditional Chinese Medicine and Natural Products, College of Pharmacy/Guangdong Province Key Laboratory of Pharmacodynamic Constituents of Traditional Chinese Medicine and New Drug Research/International Cooperative Laboratory of Traditional Chinese Medicine Modernization and Innovative Drug Development of Ministry of Education (MOE) of China, Jinan University, Guangzhou 510632, China.
J Nat Prod. 2023 Aug 25;86(8):1919-1930. doi: 10.1021/acs.jnatprod.3c00287. Epub 2023 Jun 27.
Repetitive isolation of known compounds remains a major challenge in natural-product-based drug discovery. LC-MS/MS-based molecular networking has become a highly efficient strategy for the discovery of new natural products from complex mixtures. Herein, we report a molecular networking-guided isolation procedure, which resulted in the discovery of seven new cyclopentapeptides, namely, pseudoviridinutans A-F (-), from the marine-derived fungus TW58-5. Compounds - feature a rare amino acid moiety, ,β-dimethyltyrosine, observed for the first time from a marine-derived fungus. The planar structures of - were elucidated by detailed analyses of IR, UV, HR ESI-Q-TOF MS, and 1D and 2D NMR spectroscopic data. Meanwhile, their absolute configurations were determined through a combination of Marfey's method and X-ray diffraction. Subsequent bioassay revealed the anti-inflammation potential of -, especially , which inhibited the production of nitric oxide (NO), a vital inflammatory mediator, in LPS-induced murine macrophage RAW264.7 cells by regulating the expression level of NLRP3 and iNOS.
从复杂混合物中发现新天然产物的重复分离已知化合物仍然是基于天然产物的药物发现的主要挑战。基于 LC-MS/MS 的分子网络已成为发现新天然产物的高效策略。本文报道了一种分子网络指导的分离程序,该程序从海洋来源的真菌 TW58-5 中发现了七种新的环五肽,即 pseudoviridinutans A-F(-)。化合物-具有罕见的氨基酸部分,β-二甲基酪氨酸,这是首次从海洋来源的真菌中观察到。通过详细分析 IR、UV、HR ESI-Q-TOF MS 以及 1D 和 2D NMR 光谱数据,阐明了-的平面结构。同时,通过 Marfey 法和 X 射线衍射的结合确定了它们的绝对构型。随后的生物测定显示了-的抗炎潜力,特别是-,通过调节 NLRP3 和 iNOS 的表达水平,抑制 LPS 诱导的鼠巨噬细胞 RAW264.7 细胞中一氧化氮(NO)的产生,NO 是一种重要的炎症介质。