{"title":"磁性多糖载体固定化柚皮苷酶α- l -鼠李糖苷酶和β- d -葡萄糖苷酶亚基的研究","authors":"Joanna Bodakowska-Boczniewicz, Zbigniew Garncarek","doi":"10.3390/ijms26199813","DOIUrl":null,"url":null,"abstract":"<p><p>Naringinase consists of two enzymes: α-L-rhamnosidase and β-D-glucosidase. The enzyme was immobilized on a carrier prepared from carob gum activated with polyethyleneimine. Cross-linking with dextran aldehyde was used to improve the stability of the immobilization. Knowledge of the characteristics of naringinase subunits is important for developing efficient and selective enzymatic reactions involving flavonoids. This study aimed to characterize two subunits of naringinase-α-L-rhamnosidase and β-D-glucosidase-free, immobilized on a magnetic polysaccharide carrier and cross-linked with dextran aldehyde. The characterization of free, immobilized, and stabilized naringinase, as well as α-L-rhamnosidase and β-D-glucosidase, included the effect of pH and temperature on enzyme activity, as well as the determination of their stability depending on the pH and temperature of the environment, and the determination of kinetic constants. Immobilization and subsequent stabilization of naringinase did not affect the optimal pH for the activity of α-L-rhamnosidase and β-D-glucosidase. Immobilization caused a change in the optimal temperature for the activity of α-L-rhamnosidase and β-D-glucosidase from 60 to 65°. Cross-linking of immobilized naringinase with dextran aldehyde increased the temperature stability of its subunits. Cross-linking also altered the pH stability profile of β-D-glucosidase. Immobilization and stabilization of naringinase slightly reduced the maximum reaction rate for α-L-rhamnosidase and β-D-glucosidase compared to the free enzyme. 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引用次数: 0
摘要
柚皮苷酶由α- l -鼠李糖苷酶和β- d -葡萄糖苷酶两种酶组成。该酶固定化在聚乙烯亚胺活化的角豆胶载体上。采用葡聚糖醛交联提高固定化的稳定性。了解柚皮苷酶亚基的特性对于开发高效、选择性的类黄酮酶促反应具有重要意义。本研究旨在表征柚皮苷酶-α- l -鼠李糖苷酶和β- d -葡萄糖苷酶的两个亚基,它们固定在磁性多糖载体上并与葡聚糖醛交联。对柚皮苷酶、α- l -鼠李糖苷酶和β- d -葡萄糖苷酶的游离酶、固定化酶和稳定化酶进行表征,包括pH和温度对酶活性的影响,以及它们随环境pH和温度的稳定性和动力学常数的测定。柚皮苷酶的固定化和随后的稳定化不影响α- l -鼠李糖苷酶和β- d -葡萄糖苷酶活性的最佳pH值。固定使α- l -鼠李糖苷酶和β- d -葡萄糖苷酶活性的最佳温度从60℃变化到65℃。固定化柚皮苷酶与葡聚糖醛交联提高了其亚基的温度稳定性。交联也改变了β- d -葡萄糖苷酶的pH稳定性。与游离酶相比,柚皮苷酶的固定化和稳定化稍微降低了α- l -鼠李糖苷酶和β- d -葡萄糖苷酶的最大反应速率。由于固定化,酶对这两个亚基底物的亲和力降低。
Characterization of α-L-Rhamnosidase and β-D-Glucosidase Subunits of Naringinase Immobilized on a Magnetic Polysaccharide Carrier.
Naringinase consists of two enzymes: α-L-rhamnosidase and β-D-glucosidase. The enzyme was immobilized on a carrier prepared from carob gum activated with polyethyleneimine. Cross-linking with dextran aldehyde was used to improve the stability of the immobilization. Knowledge of the characteristics of naringinase subunits is important for developing efficient and selective enzymatic reactions involving flavonoids. This study aimed to characterize two subunits of naringinase-α-L-rhamnosidase and β-D-glucosidase-free, immobilized on a magnetic polysaccharide carrier and cross-linked with dextran aldehyde. The characterization of free, immobilized, and stabilized naringinase, as well as α-L-rhamnosidase and β-D-glucosidase, included the effect of pH and temperature on enzyme activity, as well as the determination of their stability depending on the pH and temperature of the environment, and the determination of kinetic constants. Immobilization and subsequent stabilization of naringinase did not affect the optimal pH for the activity of α-L-rhamnosidase and β-D-glucosidase. Immobilization caused a change in the optimal temperature for the activity of α-L-rhamnosidase and β-D-glucosidase from 60 to 65°. Cross-linking of immobilized naringinase with dextran aldehyde increased the temperature stability of its subunits. Cross-linking also altered the pH stability profile of β-D-glucosidase. Immobilization and stabilization of naringinase slightly reduced the maximum reaction rate for α-L-rhamnosidase and β-D-glucosidase compared to the free enzyme. As a result of immobilization, the enzymes' affinity for substrates for both subunits decreased.
期刊介绍:
The International Journal of Molecular Sciences (ISSN 1422-0067) provides an advanced forum for chemistry, molecular physics (chemical physics and physical chemistry) and molecular biology. It publishes research articles, reviews, communications and short notes. Our aim is to encourage scientists to publish their theoretical and experimental results in as much detail as possible. Therefore, there is no restriction on the length of the papers or the number of electronics supplementary files. For articles with computational results, the full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material (including animated pictures, videos, interactive Excel sheets, software executables and others).