大环内酯藻毒素Goniodomin a转化为次级酸的一种瞬时氧环烷中间体。

IF 3.7 3区 医学 Q2 CHEMISTRY, MEDICINAL
Chemical Research in Toxicology Pub Date : 2025-01-20 Epub Date: 2024-12-23 DOI:10.1021/acs.chemrestox.4c00390
Constance M Harris, Bernd Krock, Thomas M Harris
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引用次数: 0

摘要

海藻大环内酯性腺素A (GDA)在异常温和的碱性条件下发生环裂解,形成二酸GDA-sa和异GDA-sa的立体异构体混合物。在初级裂解途径中,大环内酯环的打开是由于C32半晶羟基在C31上的碱催化攻击导致羧基位移,生成氧烷-羧酸,称为性腺酸。氧环是不稳定的,发生溶解打开,主要形成GDA-sa。通过在H218O中进行开环反应,在第二酸的C32处加入了同位素标记,得到了对该途径的实验支持。采用碰撞诱导解离(CID)质谱法对Na+和NH4+离子加合物进行分析,确定了大环内酯环的开环是由烷基-o裂解引起的。裂解主要由标记的二酸的Grob-Wharton脱羧反应和逆转录diols - alder反应主导。在无水条件下进行开环反应,实现了对性腺酸的直接观察。一个次要的烷基- o裂解途径通过烯丙基在GDA或氧环烷的C29上的攻击产生了异GDA-sa。在GDA-sa和异GDA-sa的形成过程中,开环都可能是由Na+和NH4+催化的。GDA-sa的形成可以在质谱仪中发生逆转。18O标记的GDA-sa的CID片段恢复了氧环,但导致C32的18O标记优先丢失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Goniodomic Acid, a Transient Oxirane Intermediate in the Conversion of the Macrolide Algal Toxin Goniodomin A to Seco Acids.

The algal macrolide goniodomin A (GDA) undergoes ring-cleavage under unusually mild, alkaline conditions to form mixtures of stereoisomers of seco acids GDA-sa and iso-GDA-sa. In the primary fragmentation pathway, opening of the macrolide ring occurs by displacement of the carboxyl group by a base-catalyzed attack of the C32 hemiketal hydroxy group on C31, yielding an oxirane-carboxylic acid, named goniodomic acid. The oxirane ring is unstable, undergoing solvolytic opening to form mainly GDA-sa. Experimental support for this pathway obtained by carrying out the ring-opening reaction in H218O resulted in incorporation of the isotopic label at C32 of the seco acid. Collision-induced dissociation (CID) mass spectrometry of Na+ and NH4+ ion adducts was employed to establish that ring-opening of the macrolide ring occurred by alkyl-O cleavage. Fragmentation was dominated by Grob-Wharton decarboxylation and retro-Diels-Alder reactions of the labeled seco acids. Direct observation of goniodomic acid was achieved when the ring-opening reaction was carried out under anhydrous conditions. A minor alkyl-O cleavage pathway gives rise to iso-GDA-sa by allylic attack at C29 of GDA or of the oxirane. In the formation of both GDA-sa and iso-GDA-sa, ring-opening is likely to be catalyzed by Na+ and NH4+. Reversal of GDA-sa formation can occur in the mass spectrometer. CID fragmentation of the 18O-labeled GDA-sa restores the oxirane ring but causes preferential loss of the 18O label from C32.

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来源期刊
CiteScore
7.90
自引率
7.30%
发文量
215
审稿时长
3.5 months
期刊介绍: Chemical Research in Toxicology publishes Articles, Rapid Reports, Chemical Profiles, Reviews, Perspectives, Letters to the Editor, and ToxWatch on a wide range of topics in Toxicology that inform a chemical and molecular understanding and capacity to predict biological outcomes on the basis of structures and processes. The overarching goal of activities reported in the Journal are to provide knowledge and innovative approaches needed to promote intelligent solutions for human safety and ecosystem preservation. The journal emphasizes insight concerning mechanisms of toxicity over phenomenological observations. It upholds rigorous chemical, physical and mathematical standards for characterization and application of modern techniques.
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