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封装在金属有机框架中的新型牛碳酸酐酶:仿生固定二氧化碳的新平台。

Novel bovine carbonic anhydrase encapsulated in a metal-organic framework: a new platform for biomimetic sequestration of CO.

作者信息

Asadi Vahideh, Kardanpour Reihaneh, Tangestaninejad Shahram, Moghadam Majid, Mirkhani Valiollah, Mohammadpoor-Baltork Iraj

机构信息

Department of Chemistry, Catalysis Division, University of Isfahan Isfahan 81746-73441 Iran

出版信息

RSC Adv. 2019 Sep 10;9(49):28460-28469. doi: 10.1039/c9ra04603h. eCollection 2019 Sep 9.

Abstract

In this work, maximizing the utilization of CO and its precipitation as CaCO by using immobilized bovine carbonic anhydrase (BCA) was evaluated. In this way, selection of suitable carriers which have a gas adsorption function would enhance the CO sequestration efficiency of the carbonic anhydrase (CA). So a metal-organic framework (MOF), an excellent material for gas adsorption and enzyme immobilization was used. In this manner, BCA was encapsulated into the microporous zeolite imidazolate framework, ZIF-8, for the first time, using a method. Systematic characterization including powder X-ray diffraction (PXRD), UV-vis, and Fourier transform infrared (FT-IR) spectroscopies, BET, field emission scanning electron microscopy (FE-SEM) and energy dispersive X-ray (EDX) confirmed that the entrapment of BCA molecules was successfully achieved during the crystal growth of ZIF-8 with an enzyme loading of 100 ± 1.2 mg g of BCA-ZIF-8. Optimization of the matrix for increasing the stability of the enzyme in an encapsulated form is the main aim of the present study. The approach was proposed because this method provides better enzyme protection from degradation, minimizes enzyme leaching and enables multiple reuse. Then, the influence of different parameters, including pH, temperature, storage and reusability, was evaluated for enzyme@MOF composites free enzymes. The prepared biocatalyst exhibited outstanding activity in a wide pH and temperature range and demonstrates high storage stability up to 37 days. This efficient and simple association procedure seems well-adapted to produce an enzymatic bio-catalyst for biocatalytic hydration of CO. The FT-IR analysis revealed that the structure of BCA was well maintained during the encapsulation process. The thermal stability and reusability of the BCA-ZIF-8 increased noticeably due to the structural rigidity and confinement of the ZIF-8 scaffolds. These two parameters are very important for practical applications.

摘要

在这项工作中,评估了通过使用固定化牛碳酸酐酶(BCA)来最大化一氧化碳(CO)的利用率及其以碳酸钙(CaCO₃)形式沉淀的情况。通过这种方式,选择具有气体吸附功能的合适载体将提高碳酸酐酶(CA)的CO封存效率。因此,使用了一种金属有机框架(MOF),它是用于气体吸附和酶固定化的优异材料。通过这种方式,首次使用一种方法将BCA封装到微孔沸石咪唑酯框架ZIF-8中。包括粉末X射线衍射(PXRD)、紫外可见光谱(UV-vis)和傅里叶变换红外光谱(FT-IR)、比表面积分析(BET)、场发射扫描电子显微镜(FE-SEM)和能量色散X射线光谱(EDX)在内的系统表征证实,在ZIF-8晶体生长过程中成功实现了BCA分子的包封,BCA-ZIF-8的酶负载量为100±1.2毫克/克。优化基质以提高酶在包封形式下的稳定性是本研究的主要目的。提出这种方法是因为它能更好地保护酶不被降解,最大限度地减少酶的渗漏并能多次重复使用。然后,针对酶@MOF复合材料和游离酶,评估了包括pH值、温度、储存和可重复使用性在内的不同参数的影响。制备的生物催化剂在较宽的pH值和温度范围内表现出出色的活性,并在长达37天的时间内显示出高储存稳定性。这种高效且简单的结合程序似乎非常适合用于生产用于CO生物催化水合的酶促生物催化剂。FT-IR分析表明,在包封过程中BCA的结构得到了很好的保持。由于ZIF-8支架的结构刚性和限制作用,BCA-ZIF-8的热稳定性和可重复使用性显著提高。这两个参数对于实际应用非常重要。

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