Sandjo Louis P, Kuete Victor, Biavatti Maique W
Department of Pharmaceutical Sciences, CCS, Universidade Federal de Santa Catarina, Florianopolis 88040-900, SC, Brazil.
Department of Biochemistry, Faculty of Sciences, University of Dschang, Cameroon.
Beilstein J Org Chem. 2015 Sep 18;11:1667-99. doi: 10.3762/bjoc.11.183. eCollection 2015.
This review focuses on pyridoacridine-related metabolites as one biologically interesting group of alkaloids identified from marine sources. They are produced by marine sponges, ascidians and tunicates, and they are structurally comprised of four to eight fused rings including heterocycles. Acridine, acridone, dihydroacridine, and quinolone cores are features regularly found in these alkaloid skeletons. The lack of hydrogen atoms next to quaternary carbon atoms for two or three rings makes the chemical shift assignment a difficult task. In this regard, one of the aims of this review is the compilation of previously reported, pyridoacridine (13)C NMR data. Observations have been made on the delocalization of electrons and the presence of some functional groups that lead to changes in the chemical shift of some carbon resonances. The lack of mass spectra information for these alkaloids due to the compactness of their structures is further discussed. Moreover, the biosynthetic pathways of some of these metabolites have been shown since they could inspire biomimetic synthesis. The synthesis routes used to prepare members of these marine alkaloids (as well as their analogues), which are synthesized for biological purposes are also discussed. Pyridoacridines were found to have a large spectrum of bioactivity and this review highlights and compares the pharmacophores that are responsible for the observed bioactivity.
本综述聚焦于吡啶吖啶相关代谢物,这是一类从海洋来源鉴定出的具有生物学意义的生物碱。它们由海洋海绵、海鞘和被囊动物产生,其结构由四到八个稠合环组成,包括杂环。吖啶、吖啶酮、二氢吖啶和喹诺酮核心是这些生物碱骨架中常见的特征。两个或三个环的季碳原子旁缺少氢原子,这使得化学位移归属成为一项艰巨的任务。在这方面,本综述的目的之一是汇编先前报道的吡啶吖啶的(13)C NMR数据。已对电子离域以及一些导致某些碳共振化学位移变化的官能团的存在进行了观察。由于这些生物碱结构紧凑,进一步讨论了它们缺乏质谱信息的情况。此外,还展示了其中一些代谢物的生物合成途径,因为它们可能启发仿生合成。还讨论了用于制备这些海洋生物碱(及其类似物)成员的合成路线,这些合成路线是为生物学目的而进行的。已发现吡啶吖啶具有广泛的生物活性,本综述突出并比较了导致观察到的生物活性的药效基团。