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多孢孔菌素3/4的构效关系研究确定了一种靶向真核生物蛋白质合成的药效团。

Myriaporone 3/4 structure--activity relationship studies define a pharmacophore targeting eukaryotic protein synthesis.

作者信息

Hines John, Roy Myriam, Cheng Hua, Agapakis Christina M, Taylor Richard, Crews Craig M

机构信息

Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, Connecticut 06520-8103, USA.

出版信息

Mol Biosyst. 2006 Aug;2(8):371-9. doi: 10.1039/b602936a. Epub 2006 May 26.

Abstract

Myriaporones are naturally occurring compounds which structurally resemble the southern hemisphere of the tedanolide family of macrolide antitumor agents. Despite the fact that myriaporone 3/4 represents only a portion of tedanolide, it nonetheless retains much of its biological activity. We show here that like tedanolide, myriaporone 3/4 inhibits protein synthesis and proliferation of mammalian cells with low nanomolar potencies but displays no prokaryotic growth inhibitory effect. Moreover, myriaporone 3/4 displays a very rapid, reversible and p21-independent activity to block S phase progression in mammalian cells. Structure-activity relationship studies revealed that the C18-C19 epoxide and the C14 hydroxymethyl group (tedanolide numbering) of myriaporone 3/4 are required for cell cycle inhibition. These constitute previously unidentified and/or novel pharmacophores for myriaporone 3/4. Our results show that the important biological activities associated with the structurally complex tedanolides are present and can be harnessed in the chemically much simpler myriaporones. This greatly increases the value of the latter as investigative tools for biochemical research as well as for development of potential therapeutics.

摘要

多节孢菌素是天然存在的化合物,其结构类似于大环内酯类抗肿瘤药物泰德内酯家族的南半球部分。尽管多节孢菌素3/4仅代表泰德内酯的一部分,但它仍然保留了其许多生物活性。我们在此表明,与泰德内酯一样,多节孢菌素3/4以低纳摩尔效力抑制哺乳动物细胞的蛋白质合成和增殖,但对原核生物生长没有抑制作用。此外,多节孢菌素3/4表现出非常快速、可逆且不依赖p21的活性,以阻断哺乳动物细胞的S期进程。构效关系研究表明,多节孢菌素3/4的C18 - C19环氧化物和C14羟甲基(泰德内酯编号)是细胞周期抑制所必需的。这些构成了多节孢菌素3/4以前未被识别和/或新的药效基团。我们的结果表明,与结构复杂的泰德内酯相关的重要生物活性存在于化学上简单得多的多节孢菌素中,并且可以被利用。这大大增加了后者作为生化研究以及潜在治疗药物开发的研究工具的价值。

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