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澳大利亚海洋沉积物来源的拟青霉(CMB-M0042F)中的细胞松弛素:酸介导的分子内环加成增强了化学多样性。

Cytochalasins from an Australian Marine Sediment-Derived Phomopsis sp. (CMB-M0042F): Acid-Mediated Intramolecular Cycloadditions Enhance Chemical Diversity.

机构信息

Institute for Molecular Bioscience, The University of Queensland , St. Lucia, Queensland 4072, Australia.

出版信息

J Org Chem. 2017 Sep 15;82(18):9704-9709. doi: 10.1021/acs.joc.7b01793. Epub 2017 Aug 31.

DOI:10.1021/acs.joc.7b01793
PMID:28831797
Abstract

Chemical analysis of an Australian coastal marine sediment-derived fungus, Phomopsis sp. (CMB-M0042F), yielded the known cytochalasins J (1) and H (2), together with five new analogues, cytochalasins J-J (3-5) and H and H (6 and 7). Structures of 1-7 were assigned on the basis of detailed spectroscopic analysis, chemical interconversion, and biosynthetic and mechanistic considerations. Of note, 1 and 2 proved to be highly sensitive to acid-mediated transformation, with 1 affording 3-5 and 2 affording 6 and 7. Whereas 1, 2, 4, and 5 were detected as natural products in crude culture extracts, 3, 6, and 7 were designated as acid-mediated handling artifacts. We propose novel stereo- and regiospecific intramolecular cycloadditions, under tight functional group control, that facilitate selective conversion of 1 and 2 to the rare 5/6/6/7/5- and 5/6/5/8-fused heterocycles 5 and 7, respectively. Knowledge of acid sensitivity within the cytochalasin family provides a valuable cautionary lesson that has the potential to inform our analysis of past and future investigations into this structure class and inspire novel biomimetic transformations leading to new chemical diversity.

摘要

从澳大利亚沿海海洋沉积物真菌 Phomopsis sp.(CMB-M0042F)中进行的化学分析得到了已知的细胞松弛素 J(1)和 H(2),以及五个新的类似物,细胞松弛素 J-J(3-5)和 H 和 H(6 和 7)。1-7 的结构是基于详细的光谱分析、化学互变以及生物合成和机制考虑来确定的。值得注意的是,1 和 2 被证明对酸介导的转化非常敏感,1 生成 3-5,2 生成 6 和 7。虽然 1、2、4 和 5 在粗培养提取物中被检测为天然产物,但 3、6 和 7 被指定为酸介导的处理人工产物。我们提出了新颖的立体和区域特异性的分子内环加成反应,在严格的官能团控制下,有利于 1 和 2 选择性转化为罕见的 5/6/6/7/5-和 5/6/5/8-稠合杂环 5 和 7。细胞松弛素家族内的酸敏感性知识提供了一个有价值的警示教训,有可能影响我们对该结构类别的过去和未来研究的分析,并激发新的仿生转化,从而产生新的化学多样性。

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