Inulinase Immobilization on Functionalized Magnetic Nanoparticles Prepared with Soy Protein Isolate Conjugated Bovine Serum Albumin for High Fructose Syrup Production

H. Torabizadeh, M. Mikani
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引用次数: 3

Abstract

Inulinase from Aspergillus niger was covalently immobilized on magnetic nanoparticles (MNPs/Fe3O4) covered with soy protein isolate (SPI/Fe3O4) functionalized by bovine serum albumin (BSA) nanoparticles. MNPs are promising enzyme carriers because they separate easily under external magnetic fields and have enhanced immobilized enzyme reusability. As MNPs aggregate simply, surface coating strategy was employed. SPI functionalized by BSA was a suitable candidate for nanomagnetite coating due to its superior biocompatibility and hydrophilicity. Fe3O4@SPI-BSA nanoparticles were synthesized as a novel carrier with narrow particle size distribution. Step by step fabrication monitoring of Fe3O4@SPI-BSA nanoparticles was performed using field emission scanning electron microscopy and dynamic light scattering. The results illustrated that nanomagnetite with the spherical morphology was well monodispersed with the diameter of about 35 nm. The average size of the SPI-BSA nanoparticles was 80 to 90 nm, and their zeta potential was around −34 mV. Finally, the mean diameter of fabricated Fe3O4@SPI-BSA NPs was less than 120 nm. Inulinase enzyme from Aspergillus niger was covalently immobilized through gluteraldehyde on Fe3O4@SPI-BSA nanoparticles successfully. Fourier transform infrared spectra and field emission scanning electron microscopy images provided sufficient proof for the enzyme immobilization on the nanoparticles with 80% enzyme loading.
大豆分离蛋白结合牛血清白蛋白制备的功能化磁性纳米颗粒固定化菊粉酶用于高果糖糖浆生产
将黑曲霉菊粉酶共价固定在由牛血清白蛋白(BSA)纳米颗粒修饰的大豆分离蛋白(SPI/Fe3O4)覆盖的磁性纳米颗粒(MNPs/Fe3O4)上。MNPs是一种很有前途的酶载体,因为它们在外部磁场下容易分离,并且具有增强的固定化酶的可重用性。由于MNPs聚集性简单,采用表面涂覆策略。牛血清蛋白功能化的SPI具有良好的生物相容性和亲水性,是纳米磁铁矿涂层的理想选择。Fe3O4@SPI-BSA纳米颗粒是一种粒径分布较窄的新型载体。利用场发射扫描电镜和动态光散射技术对Fe3O4@SPI-BSA纳米颗粒的制备过程进行了监测。结果表明,纳米磁铁矿具有良好的单分散性,粒径约为35 nm;SPI-BSA纳米颗粒的平均尺寸为80 ~ 90 nm, zeta电位在−34 mV左右。制备的Fe3O4@SPI-BSA纳米粒子平均直径小于120 nm。利用谷戊醛在Fe3O4@SPI-BSA纳米颗粒上成功地将黑曲霉菊粉酶共价固定。傅里叶变换红外光谱和场发射扫描电镜图像充分证明了酶在80%负载的纳米颗粒上的固定化。
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