头孢他汀和瑞特拉嗪。

Q1 Biochemistry, Genetics and Molecular Biology
Martín A Iglesias-Arteaga, Jacek W Morzycki
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引用次数: 29

摘要

这篇综述文章是对众多化学家的致敬,他们在过去四分之一世纪的不懈努力导致了分离,鉴定,并最终化学合成了一类海洋双甾体吡嗪生物碱。在战胜癌症的任务中,在自然产生的化合物中寻找生物活性物质无疑是一种优先的方法。Petitt, Fusetani和他们的同事的杰出贡献使得发现了这一海洋生物碱家族,这些生物碱作为潜在的抗癌治疗药物出现,尽管还有很长的路要走。从深水中收集活生物体是一项具有挑战性和危险的任务,随后是艰苦的分离、复杂结构的阐明和生物试验。这一重大努力的结果是鉴定出45种化合物,它们是迄今为止最有效的抗癌药物。这些分离出来的生物碱的奇妙结构引起了合成化学家的注意,他们勇敢地承担了合成该家族中一些最活跃成员的挑战性任务。Fuchs, Heathcock, Winterfeldt, Suarez, Shair和他们的同事率先建立了可行的合成路线,用于制备一些天然存在的化合物和大量合成类似物,从而建立了SAR标准,指导了新的合成类似物的设计。许多类似物已经准备好研究双甾体吡嗪的作用机制,例如头孢司他汀类似物具有张力螺旋形部分。然而,这些化合物的作用机制和生物学靶点仍远未被了解。因此,在目前阶段,合理设计更简单,但高度活跃的类似物似乎是难以捉摸的。为什么这些化合物必须是二聚体才能显示出高的生物活性,目前还不清楚。此外,尚不清楚中心吡嗪环是简单的连接器还是具有某些附加功能。这可以通过检查甾体二聚体与其他连接体(如苯环)的生物活性来检验。这种类似物实际上已经制备出来,但没有生物活性所必需的官能团。由于材料短缺,头孢他汀类药物的临床试验陷入了僵局。迫切需要提供高活性,但不太复杂的类似物,这可以在大量的高级药理学研究中可用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cephalostatins and ritterazines.

This review article is a tribute to the numerous chemists whose relentless effort for the last quarter of a century resulted in the isolation, identification, and finally the chemical synthesis of a family of bis-steroidal pyrazine alkaloids of marine origin. In the task of defeating cancer, the search for bioactive substances among the naturally occurring compounds is, without any doubt, a preferential approach. The remarkable contribution of Petitt, Fusetani, and their coworkers allowed to discover this family of marine alkaloids that emerge as potential therapeutic anticancer agents, although there is still a long way to go. The challenging and dangerous task of collecting living organisms from deep-waters was followed by a laborious isolation, elucidation of the complicated structures and biological tests. The outcome of this paramount effort was the identification of 45 compounds that stand, to date, as some of the most potent anticancer agents. The intriguing structures of the isolated alkaloids drew the attention of synthetic chemists, valiant enough to undertake the challenging task of synthesizing some of the most active members of the family. Fuchs, Heathcock, Winterfeldt, Suarez, Shair, and their associates pioneered in the establishment of feasible synthetic routes for the preparation of some of the naturally occurring compounds and a large number of synthetic analogs, allowing to establish SAR criteria that have guided the design of new synthetic analogs. Numerous analogs have been prepared to investigate the mechanism of action of bis-steroidal pyrazines, e.g. cephalostatin analogs bearing a strained spiroketal moiety. However, the mechanism of action and the biological target of these compounds remain far from being understood. Therefore, the rational design of simpler, yet highly active analogs seems at the current stage elusive. It is still 1 to clear why these compounds need to be dimeric to show high biological activity. Furthermore, it is not known whether the central pyrazine ring is simply a linker or has some additional function. This could be tested by examining the biological activity of steroidal dimers with other linkers, e.g. with a benzene ring. Such analogs have been actually prepared but without functional groups necessary for biological activity. The clinical trials of cephalostatins have got stuck due to a shortage of material. There is an urgent need to provide highly active, yet not too complex analogs, which could be available in substantial amounts for advanced pharmacological studies.

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来源期刊
Alkaloids: Chemistry and Biology
Alkaloids: Chemistry and Biology Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
13.70
自引率
0.00%
发文量
21
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