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重新探讨甜菜红的水解机制。

Revisiting the Mechanism of Hydrolysis of Betanin.

机构信息

Departamento de Química Fundamental, Instituto de Química, Universidade de São Paulo, São Paulo, SP, Brazil.

出版信息

Photochem Photobiol. 2018 Sep;94(5):853-864. doi: 10.1111/php.12897. Epub 2018 Mar 15.

Abstract

Betanin (betanidin 5-O-β-D-glucoside) is a water-soluble plant pigment used as a color additive in food, drugs and cosmetic products. Despite its sensitivity to light and heat, betanin maintains appreciable tinctorial strength in low acidic and neutral conditions, where the color of other plant pigments, such as anthocyanins, quickly fades. However, betanin is an iminium natural product that experiences acid- and base-catalyzed hydrolysis to form the fairly stable betalamic acid and cyclo-DOPA-5-O-β-D-glucoside. Here, we show that the decomposition of betanin in aqueous phosphate solution pH 2-11 is subject to general base catalysis by hydrogen phosphate ion and intramolecular general acid and base catalysis, providing new insights on the mechanism of betanin hydrolysis. UV/Vis absorption spectrophotometry, H NMR spectroscopy and mass spectrometry were used to investigate product formation. Furthermore, theoretical calculations support the hypothesis that the nitrogen atom of the tetrahydropyridine ring of betanin is doubly protonated, as observed for structurally simpler amino dicarboxylic acids. Our results contribute to the study of betanin and other pigments belonging to the class of betalains and to deepen the knowledge on the chemical properties of imino acids as well as on iminium-catalyzed modifications of carbonyl compounds in water.

摘要

甜菜红(甜菜苷 5-O-β-D-葡萄糖苷)是一种水溶性植物色素,用于食品、药品和化妆品的着色剂。尽管甜菜红对光和热敏感,但在低酸性和中性条件下,它仍保持相当大的着色力,而其他植物色素,如花色苷,在这些条件下颜色迅速褪色。然而,甜菜红是一种亚氨基天然产物,经历酸和碱催化水解形成相当稳定的甜菜醛酸和环-DOPA-5-O-β-D-葡萄糖苷。在这里,我们表明,在 pH 2-11 的磷酸水溶液中,甜菜红的分解受到磷酸氢根离子的广义碱催化和分子内广义酸和碱催化的影响,为甜菜红水解的机制提供了新的见解。使用紫外/可见吸收分光光度法、1H NMR 光谱和质谱法研究了产物的形成。此外,理论计算支持了这样的假设,即甜菜红中环四氢吡咯环的氮原子被双重质子化,这与结构更简单的氨基酸二羧酸相似。我们的结果有助于甜菜红和其他属于甜菜红素类的色素的研究,并加深了对亚氨基酸的化学性质以及在水中亚氨基催化的羰基化合物修饰的认识。

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