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Molecular Imprinting and Immobilization of Cellulase Onto Magnetic Fe_3O_4@SiO_2 Nanoparticles

机译:纤维素酶在磁性Fe_3O_4 @ SiO_2纳米颗粒上的分子印迹和固定化

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摘要

Supermagnetic Fe_3O_4@SiO_2 nanoparticles were molecular-imprinted prepared with cellulase as the template. The molecular imprinted nanoparticles were used as support to immobilization of cellulase. The transmission electron microscopy confirmed the core-shell structure and revealed that the size of the nanoparticles was around 10 nm. It was observed that cellulase was immobilized on the nanoparticles successfully from the Fourier transform infrared spectra. The adsorption of cellulase on the nanoparticles was specific and rapid. A high immobilization efficiency of 95% was achieved after the optimization. At 70℃, the half-life of the immobilized cellulase was 3.3-fold of the free enzyme. Compared with the free enzyme, the immobilized cellulase has the same optimal pH, higher optimal temperature, better thermal stability and higher catalytic efficiency. The results strongly suggest that the immobilized cellulase on molecular imprinted Fe_3O_4@SiO_2 has the potential applications in the production of bioethanol, paper and pulp industry, and pharmaceutical industry.
机译:以纤维素酶为模板,分子印迹制备了Fe_3O_4 @ SiO_2超磁性纳米粒子。分子印迹的纳米颗粒用作纤维素酶固定化的支持物。透射电子显微镜证实了核-壳结构,并揭示了纳米颗粒的尺寸为约10nm。从傅立叶变换红外光谱观察到纤维素酶成功地固定在纳米颗粒上。纤维素酶在纳米颗粒上的吸附是特异性和快速的。优化后达到了95%的高固定化效率。在70℃,固定化纤维素酶的半衰期是游离酶的3.3倍。与游离酶相比,固定化纤维素酶具有相同的最佳pH值,较高的最佳温度,较好的热稳定性和较高的催化效率。结果强烈表明,固定在分子印迹Fe_3O_4 @ SiO_2上的纤维素酶在生物乙醇生产,造纸和纸浆工业以及制药工业中具有潜在的应用前景。

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