Lee Chan Hee, Jin Eon Seon, Lee Jin Hyung, Hwang Ee Taek
Department of Life Science, Research Institute for Nature Sciences, Hanyang University, Seoul, South Korea.
Center for Convergence Bioceramic Materials, Korea Institute of Ceramic Engineering and Technology, Cheongju-si, South Korea.
Front Bioeng Biotechnol. 2020 Oct 9;8:553591. doi: 10.3389/fbioe.2020.553591. eCollection 2020.
Biomineralized uniform and well-organized calcium carbonate microspheres were synthesized for enzyme immobilization, and the immobilized enzyme was successfully stabilized. The physicochemical parameters of calcium carbonate were studied using scanning electron microscopy with energy-dispersive X-ray spectroscopy, particle size analysis, X-ray diffraction analysis, Fourier-transform infrared spectroscopy, and surface area measurement. Additionally, Barrett-Joyner-Halenda adsorption/desorption analysis showed that the calcium carbonate microspheres provided efficient mesopore space for enzyme loading. As a model enzyme, carboxyl esterase (CE) was entrapped and then cross-linked to form an enzyme structure. In this aggregate, the cross-linked enzymes cannot leach out from mesopores, resulting in enzyme stability. The hydrolytic activities of the free and cross-linked enzymes were analyzed over broad temperature and pH ranges. The cross-linked enzyme displayed better activity than the free enzyme. Furthermore, the immobilized CE was found to be stable for more than 30 days, preserving 60% of its initial activity even after being reused more than 10 times. This report is expected to be the first demonstration of a stabilized cross-linked enzyme system in calcium carbonate microspheres, which can be applied in enzyme catalyzed reactions involved in bioprocessing, bioremediation, and bioconversion.
合成了生物矿化的均匀且有序的碳酸钙微球用于酶固定化,并且成功地稳定了固定化酶。使用扫描电子显微镜结合能量色散X射线光谱、粒度分析、X射线衍射分析、傅里叶变换红外光谱和表面积测量等方法研究了碳酸钙的物理化学参数。此外,巴雷特-乔伊纳-哈伦达吸附/脱附分析表明,碳酸钙微球为酶负载提供了有效的中孔空间。作为模型酶,羧基酯酶(CE)被包埋然后交联形成酶结构。在这个聚集体中,交联酶不会从中孔中渗出,从而实现了酶的稳定性。在较宽的温度和pH范围内分析了游离酶和交联酶的水解活性。交联酶表现出比游离酶更好的活性。此外,发现固定化的CE在30多天内保持稳定,即使在重复使用10多次后仍保留其初始活性的60%。本报告有望首次证明碳酸钙微球中稳定的交联酶系统,该系统可应用于生物加工、生物修复和生物转化中涉及的酶催化反应。