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考拉美定A和B的确切鉴定:结构解析工具库中新工具的应用与验证

Unequivocal determination of caulamidines A and B: application and validation of new tools in the structure elucidation tool box.

作者信息

Milanowski Dennis J, Oku Naoya, Cartner Laura K, Bokesch Heidi R, Williamson R Thomas, Saurí Josep, Liu Yizhou, Blinov Kirill A, Ding Yuanqing, Li Xing-Cong, Ferreira Daneel, Walker Larry A, Khan Shabana, Davies-Coleman Michael T, Kelley James A, McMahon James B, Martin Gary E, Gustafson Kirk R

机构信息

Molecular Targets Laboratory , Center for Cancer Research , National Cancer Institute , Frederick , Maryland 21702-1201 , USA . Email:

Basic Science Program, Leidos Biomedical Research, Inc. , Frederick National Laboratory for Cancer Research , Frederick , Maryland 21702-1201 , USA.

出版信息

Chem Sci. 2017 Nov 6;9(2):307-314. doi: 10.1039/c7sc01996c. eCollection 2018 Jan 14.

Abstract

Ambiguities and errors in the structural assignment of organic molecules hinder both drug discovery and total synthesis efforts. Newly described NMR experimental approaches can provide valuable structural details and a complementary means of structure verification. The caulamidines are trihalogenated alkaloids from a marine bryozoan with an unprecedented structural scaffold. Their unique carbon and nitrogen framework was deduced by conventional NMR methods supplemented by new experiments that define 2-bond heteronuclear connectivities, reveal very long-range connectivity data, or visualize the Cl isotopic effect on chlorinated carbons. Computer-assisted structural elucidation (CASE) analysis of the spectroscopic data for caulamidine A provided only one viable structural alternative. Anisotropic NMR parameters, specifically residual dipolar coupling and residual chemical shift anisotropy data, were measured for caulamidine A and compared to DFT-calculated values for the proposed structure, the CASE-derived alternative structure, and two energetically feasible stereoisomers. Anisotropy-based NMR experiments provide a global, orthogonal means to verify complex structures free from investigator bias. The anisotropic NMR data were fully consistent with the assigned structure and configuration of caulamidine A. Caulamidine B has the same heterocyclic scaffold as A but a different composition and pattern of halogen substitution. Caulamidines A and B inhibited both wild-type and drug-resistant strains of the malaria parasite at low micromolar concentrations, yet were nontoxic to human cells.

摘要

有机分子结构归属中的模糊性和错误阻碍了药物发现和全合成研究。新描述的核磁共振实验方法可以提供有价值的结构细节以及一种结构验证的补充手段。考拉美定是来自海洋苔藓虫的三卤代生物碱,具有前所未有的结构骨架。它们独特的碳氮骨架是通过传统核磁共振方法推导出来的,并辅以新的实验,这些实验可定义双键异核连接性、揭示极远程连接性数据或可视化氯对氯化碳的同位素效应。对考拉美定A的光谱数据进行计算机辅助结构解析(CASE)分析仅得到一种可行的结构异构体。对考拉美定A测量了各向异性核磁共振参数,特别是剩余偶极耦合和剩余化学位移各向异性数据,并与所提出结构、CASE推导的替代结构以及两种能量上可行的立体异构体的密度泛函理论(DFT)计算值进行了比较。基于各向异性的核磁共振实验提供了一种全面、正交的方法来验证复杂结构,且不受研究者偏见的影响。各向异性核磁共振数据与考拉美定A指定的结构和构型完全一致。考拉美定B与A具有相同的杂环骨架,但卤素取代的组成和模式不同。考拉美定A和B在低微摩尔浓度下对疟原虫的野生型和耐药菌株均有抑制作用,但对人类细胞无毒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f387/5868047/67df96e2b861/c7sc01996c-f1.jpg

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