The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kongens Lyngby, Denmark.
Biotechnol J. 2023 Jun;18(6):e2200609. doi: 10.1002/biot.202200609. Epub 2023 Apr 10.
C-glycosyltransferases (C-GTs) offer selective and efficient synthesis of natural product C-glycosides under mild reaction conditions. In contrast, the chemical synthesis of these C-glycosides is challenging and environmentally harmful. The rare occurrence of C-glycosylated compounds in Nature, despite their stability, suggests that their biosynthetic enzymes, C-GTs, might be scarce. Indeed, the number of characterized C-GTs is remarkably lower than O-GTs. Therefore, discovery efforts are crucial for expanding our knowledge of these enzymes and their efficient application in biocatalytic processes. This study aimed to identify new C-GTs based on their primary sequence. 18 new C-GTs were discovered, 10 of which yielded full conversion of phloretin to its glucosides. Phloretin is a dihydrochalcone natural product, with its mono-C-glucoside, nothofagin, having various health-promoting effects. Several of these enzymes enabled highly selective production of either nothofagin (UGT708A60 and UGT708F2) or phloretin-di-C-glycoside (UGT708D9 and UGT708B8). Molecular docking simulations, based on structural models of selected enzymes, showed productive binding modes for the best phloretin C-GTs, UGT708F2 and UGT708A60. Moreover, we characterized UGT708A60 as a highly efficient phloretin mono-C glycosyltransferase (k = 2.97 s , K = 0.1 μM) active in non-buffered, dilute sodium hydroxide (0.1-1 mM). We further investigated UGT708A60 as an efficient biocatalyst for the bioproduction of nothofagin.
C-糖基转移酶 (C-GTs) 在温和的反应条件下提供天然产物 C-糖苷的选择性和高效合成。相比之下,这些 C-糖苷的化学合成具有挑战性且对环境有害。尽管 C-糖苷化合物具有稳定性,但它们在自然界中的罕见存在表明,其生物合成酶 C-GTs 可能很稀缺。事实上,已鉴定的 C-GTs 数量明显低于 O-GTs。因此,发现工作对于扩展我们对这些酶的了解以及在生物催化过程中有效应用它们至关重要。本研究旨在根据其一级序列鉴定新的 C-GTs。发现了 18 种新的 C-GTs,其中 10 种使根皮苷完全转化为其葡萄糖苷。根皮苷是一种二氢查耳酮天然产物,其单 C-葡萄糖苷,非霍苷,具有多种促进健康的作用。这些酶中的几种能够高度选择性地生产非霍苷(UGT708A60 和 UGT708F2)或根皮苷二 C-糖苷(UGT708D9 和 UGT708B8)。基于选定酶的结构模型的分子对接模拟显示了最佳根皮苷 C-GTs,UGT708F2 和 UGT708A60 的产生活性结合模式。此外,我们将 UGT708A60 表征为一种高效的根皮苷单 C 糖苷基转移酶(k = 2.97 s ,K = 0.1 μM),在非缓冲、稀氢氧化钠(0.1-1 mM)中具有活性。我们进一步研究了 UGT708A60 作为高效生物催化剂在非霍苷的生物生产中的应用。