Departamento de Ingeniería celular y Biocatálisis , Instituto de Biotecnología, UNAM , Avenida Universidad 2001, Colonia Chamilpa , 62420 Cuernavaca , México.
J Agric Food Chem. 2019 Sep 18;67(37):10392-10400. doi: 10.1021/acs.jafc.9b03782. Epub 2019 Sep 5.
The specificity of fructooligosaccharides as prebiotics depends on their size and structure, which in turn depend on their origin or the synthesis procedure. In this work we describe the application of an inulosucrase (IslA) from CW28 to produce high molecular weight inulin from sucrose alongside a commercial endoinulinase (Novozym 960) produced by for a simultaneous or sequential reaction to synthesize fructooligosaccharides (FOS). The simultaneous reaction resulted in a higher substrate conversion and a wide diversity of FOS when compared to the sequential reaction. A shotgun MS analysis of the commercial endoinulinase preparation surprisingly revealed an additional enzymatic activity: a fructosyltransferase, responsible for the synthesis of FOS from sucrose. Consequentially, the range of FOS obtained in reactions combining inulosucrase from with the fructosyltransferase and endoinulinase from with sucrose as substrate may be extended and regulated.
低聚果糖作为益生元的特异性取决于其大小和结构,而这又取决于其来源或合成过程。在这项工作中,我们描述了一种来自 CW28 的菊粉蔗糖酶(IslA)的应用,该酶可与一种商业内切菊粉酶(Novozym 960)一起从蔗糖中生产高分子量菊粉,可用于同时或顺序反应来合成低聚果糖(FOS)。与顺序反应相比,同时反应导致更高的底物转化率和更广泛的 FOS 多样性。对商业内切菊粉酶制剂的鸟枪法 MS 分析出人意料地揭示了另一种酶活性:果糖基转移酶,负责从蔗糖合成 FOS。因此,当菊粉蔗糖酶(来自 CW28)与果糖基转移酶和内切菊粉酶(来自 )与蔗糖作为底物组合使用时,获得的 FOS 范围可能会扩大和调节。