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揭示产朊假丝酵母 α-葡萄糖苷酶的转葡糖苷活性。

Insights into the transglucosylation activity of α-glucosidase from Schwanniomyces occidentalis.

机构信息

Centro de Biología Molecular Severo Ochoa, Departamento de Biología Molecular (UAM-CSIC), Universidad Autónoma de Madrid, C/ Nicolás Cabrera, 1. Campus Cantoblanco, 28049, Madrid, Spain.

Instituto de Catálisis y Petroleoquímica (CSIC), C/ Marie Curie, 2., 28049, Madrid, Spain.

出版信息

Appl Microbiol Biotechnol. 2024 Aug 17;108(1):443. doi: 10.1007/s00253-024-13262-8.

Abstract

The α-glucosidase from Schwanniomyces occidentalis (GAM1p) was expressed in Komagataella phaffii to about 70 mg/L, and its transferase activity studied in detail. Several isomaltooligosaccharides (IMOS) were formed using 200 g/L maltose. The major production of IMOS (81.3 g/L) was obtained when 98% maltose was hydrolysed, of which 34.8 g/L corresponded to isomaltose, 26.9 g/L to isomaltotriose, and 19.6 g/L to panose. The addition of glucose shifted the IMOS synthesis towards products containing exclusively α(1 → 6)-linkages, increasing the production of isomaltose and isomaltotriose about 2-4 fold, enabling the formation of isomaltotetraose, and inhibiting that of panose to about 12 times. In addition, the potential of this enzyme to glycosylate 12 possible hydroxylated acceptors, including eight sugars and four phenolic compounds, was evaluated. Among them, only sucrose, xylose, and piceid (a monoglucosylated derivative of resveratrol) were glucosylated, and the main synthesised products were purified and characterised by MS and NMR. Theanderose, α(1 → 4)-D-glucosyl-xylose, and a mixture of piceid mono- and diglucoside were obtained with sucrose, xylose, and piceid as acceptors, respectively. Maximum production of theanderose reached 81.7 g/L and that of the glucosyl-xylose 26.5 g/L, whereas 3.4 g/L and only 1 g/L were produced of the piceid mono- and diglucoside respectively. KEY POINTS: • Overexpression of a yeast α-glucosidase producing novel molecules. • Yeast enzyme producing the heterooligosaccharides theanderose and glucosyl-xylose. • Glycosylation of the polyphenol piceid by a yeast α-glucosidase.

摘要

产朊假丝酵母 α-葡萄糖苷酶(GAM1p)在毕赤酵母中表达量约为 70mg/L,并对其转移酶活性进行了详细研究。使用 200g/L 麦芽糖生成了几种异麦芽低聚糖(IMOS)。当 98%的麦芽糖水解时,主要生成了 81.3g/L 的 IMOS,其中 34.8g/L 为异麦芽糖,26.9g/L 为异麦芽三糖,19.6g/L 为潘糖。葡萄糖的添加使 IMOS 合成向仅含有α(1→6)-键的产物转移,使异麦芽糖和异麦芽三糖的产量增加了约 2-4 倍,使异麦芽四糖的形成成为可能,并使潘糖的产量抑制到约 12 倍。此外,还评估了这种酶对 12 种可能的羟基化受体进行糖基化的潜力,包括 8 种糖和 4 种酚类化合物。其中,只有蔗糖、木糖和白藜芦醇(白藜芦醇的单葡萄糖基衍生物)被糖基化,主要合成产物通过 MS 和 NMR 进行了纯化和表征。用蔗糖、木糖和白藜芦醇作为受体,分别得到了伴乳酮糖、α(1→4)-D-葡萄糖基木糖和白藜芦醇单糖苷和二糖苷的混合物。伴乳酮糖的最高产量达到 81.7g/L,葡萄糖基木糖的产量为 26.5g/L,而白藜芦醇单糖苷和二糖苷的产量分别为 3.4g/L 和 1g/L。关键点:• 过表达产朊假丝酵母 α-葡萄糖苷酶,生成新分子。• 酵母酶生成杂低聚糖伴乳酮糖和葡萄糖基木糖。• 酵母 α-葡萄糖苷酶对多酚白藜芦醇进行糖苷化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d872/11330417/0d06bb604d09/253_2024_13262_Fig1_HTML.jpg

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