Wu Jeffrey Chun Yu, Hutchings Christopher Hayden, Lindsay Mark Jeffrey, Werner Christopher James, Bundy Bradley Charles
Department of Chemical Engineering, Brigham Young University, Provo, UT, USA.
Department of Chemical Engineering, Brigham Young University, Provo, UT, USA.
J Biotechnol. 2015 Jan 10;193:83-90. doi: 10.1016/j.jbiotec.2014.10.039. Epub 2014 Nov 24.
Breakthroughs in enzyme immobilization have enabled increased enzyme recovery and reusability, leading to significant decreases in the cost of enzyme use and fueling biocatalysis growth. However, current enzyme immobilization techniques suffer from leaching, enzyme stability, and recoverability and reusability issues. Moreover, these techniques lack the ability to control the orientation of the immobilized enzymes. To determine the impact of orientation on covalently immobilized enzyme activity and stability, we apply our PRECISE (Protein Residue-Explicit Covalent Immobilization for Stability Enhancement) system to a model enzyme, T4 lysozyme. The PRECISE system uses non-canonical amino acid incorporation and the Huisgen 1,3-dipolar cycloaddition "click" reaction to enable directed enzyme immobilization at rationally chosen residues throughout an enzyme. Unlike previous site-specific systems, the PRECISE system is a truly covalent immobilization method. Utilizing this system, enzymes immobilized at proximate and distant locations from the active site were tested for activity and stability under denaturing conditions. Our results demonstrate that orientation control of covalently immobilized enzymes can provide activity and stability benefits exceeding that of traditional random covalent immobilization techniques. PRECISE immobilized enzymes were 50 and 73% more active than randomly immobilized enzymes after harsh freeze-thaw and chemical denaturant treatments.
酶固定化技术的突破提高了酶的回收率和可重复使用性,从而显著降低了酶的使用成本,并推动了生物催化的发展。然而,目前的酶固定化技术存在酶渗漏、稳定性以及回收率和可重复使用性等问题。此外,这些技术缺乏控制固定化酶取向的能力。为了确定取向对共价固定化酶活性和稳定性的影响,我们将我们的PRECISE(用于增强稳定性的蛋白质残基特异性共价固定化)系统应用于一种模型酶——T4溶菌酶。PRECISE系统利用非天然氨基酸掺入和Huisgen 1,3-偶极环加成“点击”反应,实现酶在整个酶分子中合理选择的残基处的定向固定化。与以前的位点特异性系统不同,PRECISE系统是一种真正的共价固定化方法。利用该系统,对在活性位点附近和远处固定化的酶在变性条件下的活性和稳定性进行了测试。我们的结果表明,共价固定化酶的取向控制能够提供超过传统随机共价固定化技术的活性和稳定性优势。经过严苛的冻融和化学变性剂处理后,PRECISE固定化酶的活性比随机固定化酶分别高出50%和73%。