Silica Gel-mediated Oxidation of Prenyl Motifs Generates Natural Product-Like Artifacts

预酸化 萜类 化学 天然产物 代谢物 立体化学 有机化学 类黄酮 双键 取代基 糖苷 催化作用 生物化学 抗氧化剂
作者
Yu Tang,J. Brent Friesen,Dejan Nikolić,David C. Lankin,James B. McAlpine,Shao‐Nong Chen,Guido F. Pauli
出处
期刊:Planta Medica [Thieme Medical Publishers (Germany)]
卷期号:87 (12/13): 998-1007 被引量:3
标识
DOI:10.1055/a-1472-6164
摘要

Abstract Prenyl moieties are commonly encountered in the natural products of terpenoid and mixed biosynthetic origin. The reactivity of unsaturated prenyl motifs is less recognized and shown here to affect the acyclic Rhodiola rosea monoterpene glycoside, kenposide A (8), which oxidizes readily on silica gel when exposed to air. The major degradation product mediated under these conditions was a new aldehyde, 9. Exhibiting a shortened carbon skeleton formed through the breakdown of the terminal isopropenyl group, 9 is prone to acetalization in protic solvents. Further investigation of minor degradation products of both 8 and 8-prenylapigenin (8-PA, 12), a flavonoid with an ortho-prenyl substituent, revealed that the aldehyde formation was likely realized through epoxidation and subsequent cleavage at the prenyl olefinic bond. Employment of 1H NMR full spin analysis (HiFSA) achieved the assignment of all chemical shifts and coupling constants of the investigated terpenoids and facilitated the structural validation of the degradation product, 9. This study indicates that prenylated compounds are generally susceptible to oxidative degradation, particularly in the presence of catalytic mediators, but also under physiological conditions. Such oxidative artifact/metabolite formation leads to a series of compounds with prenyl-derived (cyclic) partial structures that are analogous to species formed during Phase I metabolism in vivo. Phytochemical and pharmacological studies should take precautions or at least consider the impact of (unavoidable) exposure of prenyl-containing compounds to catalytic and/or oxidative conditions.
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