Austrian Centre of Industrial Biotechnology, Graz, Austria.
Institute of Biotechnology and Biochemical Engineering, Graz University of Technology, NAWI Graz, Graz, Austria.
Biotechnol Bioeng. 2018 Mar;115(3):545-556. doi: 10.1002/bit.26491. Epub 2017 Nov 27.
Glycosyltransferase cascades are promising tools of biocatalysis for natural product glycosylation, but their suitability for actual production remains to be shown. Here, we demonstrate at a scale of 100 g isolated product the integrated biocatalytic production of nothofagin, the natural 3'-C-β-D-glucoside of the polyphenol phloretin. A parallel reaction cascade involving coupled C-glucosyltransferase and sucrose synthase was optimized for the one-pot glucosylation of phloretin from sucrose via an UDP/UDP-glucose shuttle. Inclusion complexation with the highly water soluble 2-hydroxypropyl-β-cyclodextrin pushed the phloretin solubility to its upper practical limit (∼120 mM) and so removed the main bottleneck on an efficient synthesis of nothofagin. The biotransformation thus intensified had excellent performance metrics of 97% yield and ∼50 g /L at a space-time yield of 3 g/L/hr. The UDP-glucose was regenerated up to ∼220 times. A scalable downstream process for efficient recovery of nothofagin (≥95% purity; ≥65% yield) was developed. A tailored anion-exchange chromatography at pH 8.5 was used for capture and initial purification of the product. Recycling of the 2-hydroxypropyl-β-cyclodextrin would also be possible at this step. Product precipitation at a lowered pH of 6.0 and re-dissolution in acetone effectively replaced desalting by size exclusion chromatography in the final step of nothofagin purification. This study therefore, reveals the potential for process intensification in the glycosylation of polyphenol acceptors by glycosyltransferase cascades. It demonstrates that, with up- and downstream processing carefully optimized and suitably interconnected, a powerful biocatalytic technology becomes available for the production of an important class of glycosides difficult to prepare otherwise.
糖基转移酶级联反应是天然产物糖基化生物催化的有前途的工具,但它们在实际生产中的适用性仍有待证明。在这里,我们在 100g 分离产物的规模上展示了非霍加因的集成生物催化生产,非霍加因是多酚根皮素的天然 3'-C-β-D-葡萄糖苷。通过 UDP/UDP-葡萄糖穿梭,涉及偶联 C-葡萄糖基转移酶和蔗糖合酶的平行反应级联反应被优化为从蔗糖对根皮素进行一锅法葡萄糖基化。与高水溶性 2-羟丙基-β-环糊精的包合络合将根皮素的溶解度推至其实用上限(约 120mM),从而消除了高效合成非霍加因的主要瓶颈。这种强化的生物转化具有出色的性能指标,产率为 97%,时空产率为 3g/L/hr 时达到约 50g/L。UDP-葡萄糖被再生了约 220 倍。开发了一种用于有效回收非霍加因的可扩展下游工艺(≥95%纯度;≥65%产率)。在 pH8.5 下使用定制的阴离子交换色谱法用于产物的捕获和初步纯化。在此步骤中也可以回收 2-羟丙基-β-环糊精。在较低的 pH 6.0 下进行产物沉淀,然后在丙酮中重新溶解,有效地替代了最后一步中非霍加因纯化中的分子筛脱盐。因此,本研究揭示了糖基转移酶级联反应在多酚受体糖基化过程中实现强化的潜力。它表明,通过仔细优化上、下游处理并适当互连,可以为生产其他方法难以制备的重要糖苷类物质提供强大的生物催化技术。