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弹性羟基磷灰石微凝胶中交联脂肪酶的超活化及其性质。

Hyperactivation of crosslinked lipases in elastic hydroxyapatite microgel and their properties.

作者信息

Jeon Hyo Won, Lee Jun Seop, Lee Chan Hee, Kim Dain, Lee Hye Sun, Hwang Ee Taek

机构信息

Department of Food Biotechnology, Dong-A University, Busan, Republic of Korea.

Center for Convergence Bioceramic Materials, Korea, Institute of Ceramic Engineering & Technology, Cheongju-Si, Chungcheongbuk-Do, Republic of Korea.

出版信息

J Biol Eng. 2024 Sep 2;18(1):46. doi: 10.1186/s13036-024-00440-5.

Abstract

Effective enzyme stabilization through immobilization is essential for the functional usage of enzymatic reactions. We propose a new method for synthesizing elastic hydroxyapatite microgel (E-HAp-M) materials and immobilizing lipase using this mesoporous mineral via the ship-in-a-bottle-neck strategy. The physicochemical parameters of E-HAp-M were thoroughly studied, revealing that E-HAp-M provides efficient space for enzyme immobilization. As a model enzyme, lipase (LP) was entrapped and then cross-linked enzyme structure, preventing leaching from mesopores, resulting in highly active and stable LP/E-HAp-M composites. By comparing LP activity under different temperature and pH conditions, it was observed that the cross-linked LP exhibited improved thermal stability and pH resistance compared to the free enzyme. In addition, they demonstrated a 156% increase in catalytic activity compared with free LP in hydrolysis reactions at room temperature. The immobilized LP maintained 45% of its initial activity after 10 cycles of recycling and remained stable for over 160 days. This report presents the first demonstration of a stabilized cross-linked LP in E-HAp-M, suggesting its potential application in enzyme-catalyzed processes within biocatalysis technology.

摘要

通过固定化实现有效的酶稳定化对于酶促反应的功能应用至关重要。我们提出了一种合成弹性羟基磷灰石微凝胶(E-HAp-M)材料的新方法,并通过瓶中船瓶颈策略使用这种介孔矿物固定脂肪酶。对E-HAp-M的物理化学参数进行了深入研究,结果表明E-HAp-M为酶固定化提供了有效的空间。作为模型酶,脂肪酶(LP)被包埋,然后交联酶结构,防止其从介孔中浸出,从而得到高活性和稳定的LP/E-HAp-M复合材料。通过比较不同温度和pH条件下的LP活性,观察到交联后的LP与游离酶相比具有更高的热稳定性和耐pH性。此外,在室温下水解反应中,它们的催化活性比游离LP提高了156%。固定化LP在循环使用10次后仍保持其初始活性的45%,并在超过160天的时间内保持稳定。本报告首次展示了在E-HAp-M中稳定的交联LP,表明其在生物催化技术中的酶催化过程中具有潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e248/11370140/146676fd26ee/13036_2024_440_Fig1_HTML.jpg

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