Herrera-González Azucena, Núñez-López Gema, Morel Sandrine, Amaya-Delgado Lorena, Sandoval Georgina, Gschaedler Anne, Remaud-Simeon Magali, Arrizon Javier
Centro de Investigación y Asistencia en Tecnología y Diseño del Estado de Jalisco A.C. - Unidad Zapopan, Camino Arenero 1227, El Bajio del Arenal, 4519, Zapopan, JAL, Mexico.
LISBP, Université de Toulouse, CNRS, INRA, INSA, LISBP-INSA Toulouse 135 Avenue de Rangueil, 31077, Toulouse, France.
Appl Microbiol Biotechnol. 2017 Jul;101(13):5223-5234. doi: 10.1007/s00253-017-8359-5. Epub 2017 Jun 8.
Enzymatic fructosylation of organic acceptors other than sugar opens access to the production of new molecules that do not exist in nature. These new glycoconjugates may have improved physical-chemical and bioactive properties like solubility, stability, bioavailability, and bioactivity. This review focuses on different classes of acceptors including alkyl alcohols, aromatic alcohols, alkaloids, flavonoids, and xanthonoids, which were tested for the production of fructoderivatives using enzymes from the glycoside hydrolase (GH) families 32 and 68 that use sucrose as donor substrate. The enzymatic strategies and the reaction conditions required for the achievement of these complex reactions are discussed, in particular with regard to the type of acceptors. The solubility and pharmacokinetic and antioxidant activity of some of these new β-D-fructofuranosides in comparison is reviewed and compared with their glucoside analogs to highlight the differences between these molecules for technological applications.
除糖类之外的有机受体的酶促果糖基化开启了生产自然界中不存在的新分子的途径。这些新的糖缀合物可能具有改善的物理化学和生物活性特性,如溶解性、稳定性、生物利用度和生物活性。本综述聚焦于不同类型的受体,包括烷基醇、芳香醇、生物碱、黄酮类化合物和呫吨酮类化合物,使用糖苷水解酶(GH)家族32和68的酶以蔗糖作为供体底物来测试它们用于生产果糖衍生物的情况。讨论了实现这些复杂反应所需的酶促策略和反应条件,特别是关于受体的类型。综述并比较了其中一些新的β-D-呋喃果糖苷与它们的葡萄糖苷类似物相比的溶解性、药代动力学和抗氧化活性,以突出这些分子在技术应用方面的差异。