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来自 的一种新型糖基转移酶通过双糖基化修饰实现了玉米赤霉烯酮解毒。

A novel glycosyltransferase from achieves zearalenone detoxification by diglycosylation modification.

机构信息

School of Food Science and Engineering, South China University of Technology, Guangzhou 510640, China.

South China Institute of Collaborative Innovation, Guangzhou 510640, China.

出版信息

Food Funct. 2024 Jun 4;15(11):6042-6053. doi: 10.1039/d4fo00872c.

Abstract

Zearalenone (ZEN), a nonsteroidal estrogenic mycotoxin produced by spp., contaminates cereals and threatens human and animal health by inducing hepatotoxicity, immunotoxicity, and genotoxicity. In this study, a new strain, YQ-1, with a strong ability to detoxify ZEN, was isolated from soil samples and characterized. YQ-1 was confirmed to degrade more than 46.26% of 20 μg mL ZEN in Luria-Bertani broth and 98.36% in fermentation broth within 16 h at 37 °C; one of the two resulting products was ZEN-diglucoside. Under optimal reaction conditions (50 °C and pH 5.0-9.0), the reaction mixture generated by YQ-1 catalyzing ZEN significantly reduced the promoting effect of ZEN on MCF-7 cell proliferation, effectively eliminating the estrogenic toxicity of ZEN. In addition, a new glycosyltransferase gene (yqgt) from YQ-1 was cloned with 98% similarity to Bs-YjiC from 168 and over-expressed in BL21 (DE3). ZEN glycosylation activity converted 25.63% of ZEN (20 μg mL) to ZEN-diG after 48 h of reaction at 37 °C. The characterization of ZEN degradation by YQ-1 and the expression of YQGT provide a theoretical basis for analyzing the mechanism by which spp. degrades ZEN.

摘要

玉米赤霉烯酮(ZEN)是一种由 spp. 产生的非甾体类雌激素真菌毒素,它污染谷物,通过诱导肝毒性、免疫毒性和遗传毒性来威胁人类和动物健康。在本研究中,从土壤样本中分离出一株具有强 ZEN 解毒能力的新 菌株 YQ-1,并对其进行了鉴定。YQ-1 被证实能够在 37°C 下的 Luria-Bertani 肉汤中在 16 小时内降解超过 46.26%的 20 μg mL ZEN,在发酵液中降解 98.36%;两种产物之一是 ZEN-双葡糖苷。在最佳反应条件(50°C 和 pH 5.0-9.0)下,YQ-1 催化 ZEN 生成的反应混合物显著降低了 ZEN 对 MCF-7 细胞增殖的促进作用,有效消除了 ZEN 的雌激素毒性。此外,从 YQ-1 中克隆了一个新的糖基转移酶基因(yqgt),与来自 168 的 Bs-YjiC 的相似度为 98%,并在 BL21(DE3)中过表达。ZEN 糖基化活性将 25.63%的 ZEN(20 μg mL)在 37°C 下反应 48 小时后转化为 ZEN-diG。YQ-1 对 ZEN 的降解特性和 YQGT 的表达为分析 spp. 降解 ZEN 的机制提供了理论依据。

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