Institute of Molecular and Industrial Biotechnology, Lodz University of Technology, Lodz, Poland.
Swiss Coordination Committee Biotechnology, Zurich, Switzerland.
Biotechnol J. 2021 Apr;16(4):e2000090. doi: 10.1002/biot.202000090. Epub 2020 Dec 30.
Biocatalytic phosphorylation reactions provide several benefits, such as more direct, milder, more selective, and shorter access routes to phosphorylated products. Favorable characteristics of biocatalytic methodologies represent advantages for in vitro as well as for in vivo phosphorylation reactions, leading to important advances in the science of synthesis towards bioactive phosphorylated compounds in various areas. The scope of this review covers key advances of biocatalytic phosphorylation reactions over the last two decades, for biocatalytic syntheses in vitro and for biotransformations in vivo (in humans). From the origins of probiotic life to in vitro synthetic applications and in vivo formation of bioactive pharmaceuticals, the common purpose is to outline the importance, relevance, and underlying connections of biocatalytic phosphorylations of small molecules. Asymmetric phosphorylations attracting increased attention are highlighted. Phosphohydrolases, phosphotransferases, phosphorylases, phosphomutases, and other enzymes involved in phosphorus chemistry provide powerful toolboxes for resource-efficient and selective in vitro biocatalytic syntheses of phosphorylated metabolites, chiral building blocks, pharmaceuticals as well as in vivo enzymatic formation of biologically active forms of pharmaceuticals. Nature's large diversity of phosphoryl-group-transferring enzymes, advanced enzyme and reaction engineering toolboxes make biocatalytic asymmetric phosphorylations using enzymes a powerful and privileged phosphorylation methodology.
生物催化的磷酸化反应具有许多优势,例如更直接、更温和、更具选择性和更短的途径来获得磷酸化产物。生物催化方法的有利特点代表了体外和体内磷酸化反应的优势,为生物活性磷酸化化合物在各个领域的合成科学带来了重要进展。本综述涵盖了过去二十年中生物催化磷酸化反应的关键进展,包括体外生物催化合成和体内(人体)生物转化。从益生菌生命的起源到体外合成应用和体内生物活性药物的形成,共同的目的是概述小分子生物催化磷酸化的重要性、相关性和潜在联系。受到越来越多关注的不对称磷酸化反应也得到了强调。参与磷化学的磷酸水解酶、磷酸转移酶、磷酸化酶、磷酸变位酶和其他酶为资源高效和选择性的体外生物催化合成磷酸化代谢物、手性砌块、药物以及药物生物活性形式的体内酶促形成提供了强大的工具包。自然界中具有丰富多样性的磷酸基团转移酶,以及先进的酶和反应工程工具包,使得使用酶进行生物催化的不对称磷酸化成为一种强大而独特的磷酸化方法。