Yuan Peng-Hui, Bi Yan-Cai, Su Bin, Yang De-Zhi, Gong Ning-Bo, Zhang Li, Lu Yang, Du Guan-Hua
Beijing City Key Laboratory of Polymorphic Drugs, Center of Pharmaceutical Polymorphs, Institute of Materia Medica, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, 100050, People's Republic of China.
Soteria Pharmaceutical Co., Ltd, Laiwu, 271100, People's Republic of China.
Nat Prod Bioprospect. 2020 Jun;10(3):141-152. doi: 10.1007/s13659-020-00243-3. Epub 2020 May 15.
Betulin (BE) has exceedingly become a potential natural product, providing multiple pharmacological and biological activities, including anti-cancer, anti-viral, and anti-inflammatory benefits. Previous research indicated that the solvatomorphism of BE can easily occur through crystallization with different organic solvents. This property of BE can directly affect its extraction, isolation, and preparation process. In this study, a system of thermogravimetry (TG)-differential thermal analysis (DTA) coupled with mass spectrometry (MS) with electron ionization (EI) and photoionization (PI) capability, equipped with the skimmer-type interface (i.e., skimmer-type interfaced TG-DTA-EI/PI-MS system), as a real-time and onsite analysis technique, was employed. Then, four solvatomorphs of BE, namely, with pyridine and water (A), sec-butanol (B), n,n-dimethylformamide (DMF) (C), and isopropanol (V), were analyzed for the first time. Finally, five kinds of the main volatile gaseous species, including HO, pyridine, sec-butanol, DMF, and isopropanol, were identified clearly. Furthermore, the multi-step desolvation processes of the four solvatomorphs of BE were revealed by this system for the first time. This system showed great potential for the rapid and accurate analysis of various solvatomorphs of natural products.
桦木醇(BE)已极具潜力地成为一种天然产物,具有多种药理和生物学活性,包括抗癌、抗病毒和抗炎作用。先前的研究表明,BE的溶剂同构现象可通过与不同有机溶剂结晶轻易发生。BE的这一特性会直接影响其提取、分离和制备过程。在本研究中,采用了一种热重分析(TG)-差示热分析(DTA)与具有电子电离(EI)和光电离(PI)能力的质谱(MS)联用的系统,该系统配备撇油器型接口(即撇油器型接口TG-DTA-EI/PI-MS系统)作为实时现场分析技术。然后,首次分析了BE的四种溶剂化物,即与吡啶和水(A)、仲丁醇(B)、N,N-二甲基甲酰胺(DMF)(C)和异丙醇(V)形成的溶剂化物。最后,明确鉴定出了包括HO、吡啶、仲丁醇、DMF和异丙醇在内的五种主要挥发性气态物质。此外,该系统首次揭示了BE的四种溶剂化物的多步去溶剂化过程。该系统在快速准确分析天然产物的各种溶剂化物方面显示出巨大潜力。