Department of Chemistry, University of California, Davis, One Shields Avenue, 95616, Davis, California, USA.
ChemSusChem. 2022 May 6;15(9):e202102539. doi: 10.1002/cssc.202102539. Epub 2022 Feb 18.
Innovation in process development is essential for applying biocatalysis in industrial and laboratory production of organic compounds, including beneficial carbohydrates such as human milk oligosaccharides (HMOs). HMOs have attracted increasing attention for their potential application as key ingredients in products that can improve human health. To efficiently access HMOs through biocatalysis, a combined substrate and process engineering strategy is developed, namely multistep one-pot multienzyme (MSOPME) design. The strategy allows access to a pure tagged HMO in a single reactor with a single C18-cartridge purification process, despite the length of the target. Its efficiency is demonstrated in the high-yielding (71-91 %) one-pot synthesis of twenty tagged HMOs (83-155 mg), including long-chain oligosaccharides with or without fucosylation or sialylation up to nonaoses from a lactoside without the isolation of the intermediate oligosaccharides. Gram-scale synthesis of an important HMO derivative - tagged lacto-N-fucopentaose-I (LNFP-I) - proceeds in 84 % yield. Tag removal is carried out in high efficiency (94-97 %) without the need for column purification to produce the desired natural HMOs with a free reducing end. The method can be readily adapted for large-scale synthesis and automation to allow quick access to HMOs, other glycans, and glycoconjugates.
在工业和实验室生产有机化合物中应用生物催化时,工艺开发的创新至关重要,其中包括有益的碳水化合物,如人乳寡糖 (HMOs)。由于 HMOs 作为可改善人类健康的产品的关键成分的潜在应用,它们受到了越来越多的关注。为了通过生物催化高效获得 HMOs,开发了一种组合的底物和过程工程策略,即多步一锅多酶 (MSOPME) 设计。该策略允许在单个反应器中使用单个 C18 柱纯化过程获得纯标记的 HMO,而无需考虑目标物的长度。该策略的效率在 20 种标记 HMO 的高产(71-91%)一锅合成中得到了证明,包括具有或不具有岩藻糖基化或唾液酸化的长链寡糖,以及从乳糖合成非九糖,无需分离中间寡糖。重要的 HMO 衍生物 - 标记乳-N-岩藻五糖-I(LNFP-I)的克级合成产率为 84%。标记的去除效率很高(94-97%),无需柱纯化即可产生具有游离还原端的所需天然 HMOs。该方法可以很容易地适应大规模合成和自动化,以快速获得 HMOs、其他聚糖和糖缀合物。