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Improved Catalytic Performance of Lipase Accommodated in the Mesoporous Silicas with Polymer-Modified Microenvironment

机译:Improved Catalytic performance of Lipase accommodated in the mesoporous silicas with polymer-modified microenvironment

摘要

The highly ordered mesoporous silicas with elaborately controlled microenvironment were synthesized via covalent incorporation of long-chain polymers (M-w = 2000 g mol(-1)) bearing specific hydrophilic/hydrophobic balance. The microenvironment (hydrophilicity/hydrophobicity) of the mesoporous silicas was quantitatively determined by gas adsorption experiments and investigated by lysozyme (LYZ) adsorption. The relative activity of lipase from Pseudomonas cepacia (PCL) encapsulated in the mesoporous silica with moderate hydrophobic microenvironment (hereafter denoted as MHM) reaches up to 281% compared with the free PCL, notably higher than that of PCL accommodated in the mesoporous silicas with hydrophilic or strong hydrophobic microenvironment (20.7-26.2% relative to the free PCL). Moreover, PCL entrapped in the nanochannels with MHM affords the highest initial rate in the kinetic resolution of (R,S)-1-phenylethanol relative to other immobilized PCL. The above results suggest that the MHM could render the active center of PCL entirely exposed to the substrates without interrupting its native conformation in the "interfacial activation". In addition, the nano channels with MHM could markedly improve the thermal stability of PCL (preserving nearly 60% of the initial activity after the incubation at 70 degrees C for 2 h) and facilitate the recycling of the immobilized PCL in both aqueous and organic media. Our work demonstrates that the subtle modulation of the microenvironment of mesoporous silicas for enzyme immobilization designates a very promising strategy to fabricate the highly active and stable heterogeneous biocatalysts for industrial application.
机译:通过共价结合长链聚合物(M-w = 2000 g mol(-1))并带有特定的亲水/疏水平衡,合成了高度精细控制的微环境的介孔二氧化硅。通过气体吸附实验定量测定了介孔二氧化硅的微环境(亲水性/疏水性),并通过溶菌酶(LYZ)吸附进行了研究。中度疏水微环境(以下称为MHM)包裹在介孔二氧化硅中的洋葱假单胞菌(PCL)脂肪酶的相对活性与游离PCL相比高达281%,显着高于亲水性介孔二氧化硅中容纳的PCL的相对活性。或强疏水性微环境(相对于游离PCL为20.7-26.2%)。此外,与其他固定的PCL相比,用MHM截留在纳米通道中的PCL在(R,S)-1-苯基乙醇的动力学拆分中提供了最高的初始速率。以上结果表明,MHM可以使PCL的活性中心完全暴露于底物,而不会在“界面活化”中中断其天然构象。此外,具有MHM的纳米通道可以显着提高PCL的热稳定性(在70摄氏度下孵育2小时后,可保留近60%的初始活性),并促进固定化PCL在水性和有机介质中的循环利用。我们的工作表明,介孔二氧化硅微环境对酶固定化的微妙调节,为制造高活性和稳定的多相生物催化剂提供了一种非常有前途的策略,可用于工业应用。

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