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用于高效生物转化大豆异黄酮糖苷为其苷元形式的工程改造。

Engineering of for Efficient Bioconversion of Soy Isoflavone Glycosides to Their Aglycone Forms.

机构信息

Department of Chemical and Biomolecular Engineering, BK21 Plus Program, KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Korea.

Institute for The BioCentury, KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Korea.

出版信息

Int J Mol Sci. 2022 Aug 24;23(17):9568. doi: 10.3390/ijms23179568.

Abstract

Soy isoflavones are phytochemicals that possess various beneficial physiological properties such as anti-aging, anti-tumor, and antioxidant properties. Since soy isoflavones exist in glycoside forms, their bioavailability requires initial hydrolysis of the sugar moieties bound to them to be efficiently absorbed through the gut epithelium. Instead of conventional chemical hydrolysis using acids or organic solvents, alternative strategies for enhancing the bioavailability of soy isoflavones using biological methods are gaining attention. Here, we engineered isolated from Korean kimchi for efficient bioconversion of soy isoflavone glycosides into their aglycone forms to enhance their bioavailability. We first constructed an expression module based on the isoflavone hydrolase (IH)-encoding gene of , which mediates conversion of isoflavone glycosides to aglycone forms. Using a high copy number plasmid and bicistronic expression design, the IH was successfully synthesized in . Additionally, we determined enzymatic activity of the IH using an in vivo β-glucosidase assay and confirmed its highly efficient bioconversion efficiency for various types of isoflavone glycosides. Finally, we successfully demonstrated that the engineered could convert isoflavone glycosides present in fermented soymilk into aglycones.

摘要

大豆异黄酮是具有多种有益生理特性的植物化学物质,如抗衰老、抗肿瘤和抗氧化特性。由于大豆异黄酮以糖苷形式存在,它们的生物利用度需要首先水解与它们结合的糖部分,以便通过肠上皮有效地吸收。为了提高大豆异黄酮的生物利用度,人们越来越关注使用生物方法来替代传统的使用酸或有机溶剂的化学水解方法。在这里,我们利用从韩国泡菜中分离到的 ,构建了一个表达模块,用于高效地将大豆异黄酮糖苷转化为苷元形式,从而提高其生物利用度。我们首先基于介导异黄酮糖苷转化为苷元形式的异黄酮水解酶(IH)编码基因构建了一个表达模块。使用高拷贝数质粒和双顺反子表达设计,成功地在 中合成了 IH。此外,我们还通过体内β-葡萄糖苷酶测定法确定了 IH 的酶活性,并证实了其对各种类型的异黄酮糖苷具有高效的生物转化效率。最后,我们成功地证明了工程菌 可以将发酵豆浆中的异黄酮糖苷转化为苷元。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d29d/9455899/4a149fc789d7/ijms-23-09568-g001.jpg

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