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松木质纳米生物炭:一种通过共价键固定粗漆酶的独特载体。

Pinewood nanobiochar: A unique carrier for the immobilization of crude laccase by covalent bonding.

机构信息

INRS-ETE, Université du Québec, 490, Rue de la Couronne, Québec G1K 9A9, Canada.

INRS-ETE, Université du Québec, 490, Rue de la Couronne, Québec G1K 9A9, Canada.

出版信息

Int J Biol Macromol. 2018 Aug;115:563-571. doi: 10.1016/j.ijbiomac.2018.04.105. Epub 2018 Apr 22.

DOI:10.1016/j.ijbiomac.2018.04.105
PMID:29689286
Abstract

Nanotechnology-inspired biocatalytic systems attracted attention for many applications since nanosized supports for enzyme immobilization can improve efficiency-determining factors e.g. enhancing the surface area and loading capacity and reducing the mass transfer resistance. Among the nanomaterials, nanobiochar has unique features as a support for enzyme immobilization i.e. high surface to volume ratio, porous structure, and presence of functional groups on its surface. However, the performance of the immobilization is highly dependent on the immobilization conditions and the properties of the enzyme and the support material. In this research, crude laccase was covalently immobilized onto functionalized nanobiochar using a two-step method of diimide-activated amidation. The effect of different parameters was investigated. The optimal conditions were found to be 14 mg/mL of laccase concentration, 5 mg/mL of nanobiochar, 8.2 mM of cross-linker and 3 h of contact time. For investigating the pH, thermal, storage, and operational stability, the sample obtained from the optimized conditions was used. The results showed the higher stability of immobilized laccase against temperature and pH variation compared to free laccase. In addition, immobilized laccase maintained its catalytic performance up to seven cycles of utilization and showed more than 50% of initial activity after two months of room temperature storage.

摘要

受纳米技术启发的生物催化系统因其可提高效率决定因素(例如,增加表面积和负载能力,降低传质阻力)而受到许多应用的关注。在纳米材料中,纳米生物炭作为酶固定化的载体具有独特的特性,即高表面积与体积比、多孔结构以及表面存在官能团。然而,固定化的性能高度依赖于固定化条件以及酶和载体材料的性质。在这项研究中,粗漆酶通过二酰亚胺激活的酰胺化的两步法被共价固定在功能化的纳米生物炭上。研究了不同参数的影响。发现最佳条件为漆酶浓度 14mg/mL、纳米生物炭 5mg/mL、交联剂 8.2mM 和接触时间 3h。为了研究 pH 值、热、储存和操作稳定性,使用了从优化条件下获得的样品。结果表明,固定化漆酶在温度和 pH 值变化方面的稳定性高于游离漆酶。此外,固定化漆酶在七个循环的使用中保持其催化性能,并且在室温下储存两个月后仍保持初始活性的 50%以上。

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