Transcriptome Profiling, Cloning, and Characterization of AnGlu04478, a Ginsenoside Hydrolyzing β-Glucosidase from Aspergillus niger NG1306.

IF 2.6 3区 生物学 Q3 MICROBIOLOGY Current Microbiology Pub Date : 2024-12-24 DOI:10.1007/s00284-024-04012-0
Mingxing Jiang, Ling Zhu, Shuhan Xie, Zhen Ren, Xiu Chen, Minjiao Liu, Genshen Yin
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Abstract

β-Glucosidase plays a pivotal role in transforming ginsenosides into specific minor ginsenosides. In this study, total ginsenosides from Panax notoginseng leaves were used as substrates to stimulate the growth of Aspergillus niger NG1306. Transcriptome analysis identified a β-glucosidase gene, Anglu04478 (1455 bp, 484 amino acids, 54.5 kDa, pI = 5.1), as a participant in the ginsenosides biotransformation process. This gene was cloned and expressed in Escherichia coli BL21 Transetta (DE3). The AnGlu04478 protein was purified using a Ni2+ column, and its enzymatic properties were characterized. Purified AnGlu04478 exhibited a specific activity of 32.97 U/mg when assayed against pNPG. Under optimal conditions (pH 4.5, temperature 40 °C), the kinetic parameters, Km and Vmax, for pNPG were 1.55 mmol/L and 0.014 mmol/min, respectively. Cu2+ displayed an inhibitory effect on AnGlu04478, whereas Ca2+, Co2+, and Ni2+ ions had minimal impact. The enzyme showed tolerance to ethanol and was largely unaffected by glucose feedback inhibition. Testing with ginsenosides as substrates revealed selective hydrolysis at the C3 position of ginsenosides Rb1, Rb2, Rb3, and Rc, with the metabolic pathway delineated as Rb1 → GypXVII, Rb2 → C-O, Rb3 → C-Mx1 → C-Mx, and Rc → C-Mc1. The conversion rates of ginsenosides Rb1, Rb2, Rb3, and Rc varied from 2.58 to 20.63%. With 0.5 U purified enzyme and 0.5 mg total ginsenosides, incubated at 40 °C for 12 h, the conversion rates were 42.6% for GypXVII, 10.4% for C-O, 6.27% for C-Mx1, 26.96% for C-Mx, and 90% for Rc. These results suggest that AnGlu04478 displays substrate promiscuity as a β-glucosidase, thus broadening the potential for ginsenoside biotransformation.

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黑曲霉NG1306中人参皂苷水解β-葡萄糖苷酶AnGlu04478的转录组分析、克隆和鉴定
β-葡萄糖苷酶在将人参皂苷转化为特定的少量人参皂苷的过程中起着关键作用。本研究以三七叶总皂苷为底物,刺激黑曲霉NG1306的生长。转录组分析发现β-葡萄糖苷酶基因Anglu04478 (1455 bp, 484个氨基酸,54.5 kDa, pI = 5.1)参与了人参皂苷的生物转化过程。克隆该基因并在大肠杆菌BL21 Transetta (DE3)中表达。用Ni2+柱纯化了AnGlu04478蛋白,并对其酶学性质进行了表征。纯化后的AnGlu04478对pNPG的比活性为32.97 U/mg。在最佳条件(pH 4.5,温度40℃)下,pNPG的动力学参数Km和Vmax分别为1.55 mmol/L和0.014 mmol/min。Cu2+对AnGlu04478有抑制作用,Ca2+、Co2+和Ni2+对AnGlu04478的抑制作用最小。该酶表现出对乙醇的耐受性,并且在很大程度上不受葡萄糖反馈抑制的影响。以人参皂苷为底物的实验表明,人参皂苷Rb1、Rb2、Rb3和Rc在C3位置选择性水解,代谢途径为Rb1→GypXVII, Rb2→C-O, Rb3→C-Mx1→C-Mx, Rc→C-Mc1。人参皂苷Rb1、Rb2、Rb3和Rc的转化率为2.58 ~ 20.63%。用0.5 U纯化酶和0.5 mg总人参皂苷,在40℃下孵育12 h, GypXVII的转化率为42.6%,C- o为10.4%,C- mx1为6.27%,C- mx为26.96%,Rc为90%。这些结果表明,AnGlu04478作为β-葡萄糖苷酶表现出底物混杂性,从而扩大了人参皂苷生物转化的潜力。
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来源期刊
Current Microbiology
Current Microbiology 生物-微生物学
CiteScore
4.80
自引率
3.80%
发文量
380
审稿时长
2.5 months
期刊介绍: Current Microbiology is a well-established journal that publishes articles in all aspects of microbial cells and the interactions between the microorganisms, their hosts and the environment. Current Microbiology publishes original research articles, short communications, reviews and letters to the editor, spanning the following areas: physiology, biochemistry, genetics, genomics, biotechnology, ecology, evolution, morphology, taxonomy, diagnostic methods, medical and clinical microbiology and immunology as applied to microorganisms.
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