Evaluating Immobilization of Hemoglobin onto Nanomesoporous MCM-41

Q. Zhai, Qing-Shuang Wang, Xiangning Zhang, Xiang-Ru Feng
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引用次数: 0

Abstract

The development and applications of biological products have been seriously hindered by conventional immobilization for its low efficiency and high cost. The immobilization of solid supports is an area of intense research due to their widespread use in synthetic chemistry and various industries. This paper highlights a great interest in the adsorption of an enzyme on the solid porous structured material and the design of new controlled delivery systems. The enzyme immobilized on solid supports and synthetic materials of the reaction mixture with strong mechanical force and easy separation serves as a high selective catalyst. A novel protein delivery system for hemoglobin (Hb) enzyme was proposed by incorporating the molecular molecules into the mesopores of well-ordered hexagonal nanometer MCM (Mobil Composition of Matters) - 41. The prepared adsorbents were successfully applied to the design and synthesis of new functionalization materials. Various parameters affecting adsorption process, such as adsorption time, adsorption isotherm, and the reusability of adsorbent, were investigated. The interaction between Hb and MCM-41 was investigated using powder X-ray diffraction (XRD), Fourier infrared spectroscopy, UV-visible solid diffuse reflectance spectroscopy and 77 K low-temperature N2 adsorption-desorption study. The experimental parameters were optimized, including the concentrations of Hb, the MCM-41 amount, and the interior surface of phenyl-functionalized MCM-41 materials. Under the optimized conditions, the biocatalytic performance was studied for Hb/MCM-41 and Hb/Ph-(MCM-41). The adsorption process of Hb by MCM-41 / Ph-(MCM-41) was in agreement with the quasi-two-order kinetic model. Process of Hb adsorption by MCM-41 / Ph-(MCM-41) belongs to an exothermic reaction, the reaction is not reversible at 4 ℃ and it is a spontaneous reaction. The Freundlich model can better describe the adsorption of hemoglobin on MCM-41 / Ph-(MCM-41). During the desorption process of composite (MCM-41)-Hb / [Ph-(MCM-41)]-Hb in 0.1 mol/L NaOH solution, the desorption rate can reach above 70% at 2 min. At 60 min, the desorption reached equilibrium and the desorption rates were 99.58% and 91.36%, respectively. The reuse activity experimental results indicated that the immobilized enzyme exhibited high catalytic activity. Reusability stability studies suggested that the prepared composites retained their activity even after five recycling runs. This shows that the phenylation of MCM-41 reduced the "leakage" of enzyme in the main material. The results of the present study demonstrated that Hb/MCM-41 and Hb/Ph-(MCM-41) are highly efficient potential nanobiocatalysts for the immobilization of enzymes onto mesoporous materials. The adsorption process of Hb by MCM-41 / Ph-(MCM-41) was in agreement with the quasi-two-order kinetic model. The reuse activity experimental results indicated that the immobilized enzyme exhibited high catalytic activity. Reusability stability studies suggested that the prepared composites retained their activity even after five recycling runs. The results of the present study demonstrate that Hb/MCM-41 and Hb/Ph-(MCM-41) are highly efficient potential nanobiocatalysts for the immobilization of enzymes onto mesoporous materials.
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评价血红蛋白在纳米孔MCM-41上的固定化
传统的固定化方法效率低、成本高,严重阻碍了生物制品的开发和应用。固体载体的固定化由于其在合成化学和各种工业中的广泛应用而成为一个研究热点。本文重点介绍了酶在固体多孔结构材料上的吸附和新型控制输送系统的设计。酶固定在固体载体和反应混合物的合成材料上,机械力强,易于分离,是一种高选择性的催化剂。提出了一种新的血红蛋白(Hb)酶的蛋白质递送系统,该系统将分子分子结合到有序的六方纳米MCM (Mobil Composition of Matters) - 41的介孔中。所制备的吸附剂成功地应用于新型功能化材料的设计和合成。考察了吸附时间、吸附等温线、吸附剂可重复使用性等参数对吸附过程的影响。采用粉末x射线衍射(XRD)、傅里叶红外光谱、紫外可见固体漫反射光谱和77 K低温N2吸附-解吸研究了Hb与MCM-41的相互作用。对实验参数进行了优化,包括Hb浓度、MCM-41用量和苯基功能化MCM-41材料的内表面。在优化后的条件下,研究了Hb/MCM-41和Hb/Ph-(MCM-41)的生物催化性能。MCM-41 / Ph-(MCM-41)吸附Hb的过程符合准二级动力学模型。MCM-41 / Ph-(MCM-41)吸附Hb的过程属于放热反应,该反应在4℃下不可逆,为自发反应。Freundlich模型能较好地描述血红蛋白在MCM-41 / Ph-(MCM-41)上的吸附。复合材料(MCM-41)- hb / [Ph-(MCM-41)]- hb在0.1 mol/L NaOH溶液中的解吸过程中,2 min时解吸率可达70%以上,60 min时达到平衡,解吸率分别为99.58%和91.36%。重复利用活性实验结果表明,固定化酶具有较高的催化活性。可重复使用性稳定性研究表明,制备的复合材料即使在五次循环运行后仍保持其活性。这表明MCM-41的苯基化减少了主材料中酶的“泄漏”。研究结果表明,Hb/MCM-41和Hb/Ph-(MCM-41)是一种高效的纳米生物催化剂,可用于介孔材料的固定化。MCM-41 / Ph-(MCM-41)吸附Hb的过程符合准二级动力学模型。重复利用活性实验结果表明,固定化酶具有较高的催化活性。可重复使用性稳定性研究表明,制备的复合材料即使在五次循环运行后仍保持其活性。研究结果表明,Hb/MCM-41和Hb/Ph-(MCM-41)是一种高效的纳米生物催化剂,具有固定化介孔材料酶的潜力。
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来源期刊
Nanoscience and Nanotechnology - Asia
Nanoscience and Nanotechnology - Asia Engineering-Engineering (all)
CiteScore
1.90
自引率
0.00%
发文量
35
期刊介绍: Nanoscience & Nanotechnology-Asia publishes expert reviews, original research articles, letters and guest edited issues on all the most recent advances in nanoscience and nanotechnology with an emphasis on research in Asia and Japan. All aspects of the field are represented including chemistry, physics, materials science, biology and engineering mainly covering the following; synthesis, characterization, assembly, theory, and simulation of nanostructures (nanomaterials and assemblies, nanodevices, nano-bubbles, nano-droplets, nanofluidics, and self-assembled structures), nanofabrication, nanobiotechnology, nanomedicine and methods and tools for nanoscience and nanotechnology.
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