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工程 β-呋喃果糖苷酶 Fru6 以提高转化果糖转移酶的能力用于生产低聚果糖。

Engineering the β-Fructofuranosidase Fru6 with Promoted Transfructosylating Capacity for Fructooligosaccharide Production.

机构信息

School of Pharmaceutical Sciences, Nanjing Tech University, 30 Puzhunan Road, Jiangbei New Area, Nanjing211800, China.

College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, 30 Puzhunan Road, Jiangbei New Area, Nanjing211800, China.

出版信息

J Agric Food Chem. 2022 Aug 10;70(31):9694-9702. doi: 10.1021/acs.jafc.2c03981. Epub 2022 Jul 28.

Abstract

Levan-type fructooligosaccharides (FOS) exhibit enhanced health-promoting prebiotic effects on gut microbiota. The wild type (WT) of β-fructofuranosidase Fru6 could mainly yield 6-ketose. Semirational design and mutagenesis of Fru6 were exploited to promote the transfructosylating capacity for FOS. The promising variants not only improved the formation of 6-kestose but also newly produced tetrasaccharides of 6,6-nystose and 1,6-nystose (a new type of FOS), and combinatorial mutation boosted the production of 6-kestose and tetrasaccharides (39.9 g/L 6,6-nystose and 4.6 g/L 1,6-nystose). Molecular docking and molecular dynamics (MD) simulation confirmed that the mutated positions reshaped the pocket of Fru6 to accommodate bulky 6-kestose in a reactive conformation with better accessibility for tetrasaccharides formation. Using favored conditions, the variant S165A/H357A could yield 6-kestose up to 335 g/L, and tetrasaccharides (6,6-nystose and 1,6-nystose) reached a high level of 121.1 g/L (134.5 times of the mutant S423A). The β-(2,6)-linked FOS may show the potential application for the prebiotic ingredients.

摘要

蔗果型低聚果糖(FOS)对肠道微生物群具有增强的健康促进益生元作用。β-呋喃果糖苷酶 Fru6 的野生型(WT)主要产生 6-酮糖。对半理性设计和 Fru6 的诱变作用可促进 FOS 的转果糖基能力。有前途的变体不仅提高了 6-酮蔗糖的形成,而且还新产生了 6,6-棉子糖和 1,6-棉子糖的四糖(一种新型 FOS),组合突变提高了 6-酮蔗糖和四糖(39.9 g/L 6,6-棉子糖和 4.6 g/L 1,6-棉子糖)的产量。分子对接和分子动力学(MD)模拟证实,突变位置重塑了 Fru6 的口袋,以在反应构象中容纳较大的 6-酮蔗糖,从而更好地获得四糖形成的可及性。在有利条件下,变体 S165A/H357A 可以产生高达 335 g/L 的 6-酮蔗糖,并且四糖(6,6-棉子糖和 1,6-棉子糖)达到了 121.1 g/L 的高水平(比突变体 S423A 高 134.5 倍)。β-(2,6)-连接的 FOS 可能具有作为益生元成分的应用潜力。

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