Unsworth Larry D, van der Oost John, Koutsopoulos Sotirios
Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Canada.
FEBS J. 2007 Aug;274(16):4044-56. doi: 10.1111/j.1742-4658.2007.05954.x.
Current theories agree that there appears to be no unique feature responsible for the remarkable heat stability properties of hyperthermostable proteins. A concerted action of structural, dynamic and other physicochemical attributes are utilized to ensure the delicate balance between stability and functionality of proteins at high temperatures. We have thoroughly screened the literature for hyperthermostable enzymes with optimal temperatures exceeding 100 degrees C that can potentially be employed in multiple biotechnological and industrial applications and to substitute traditionally used, high-cost engineered mesophilic/thermophilic enzymes that operate at lower temperatures. Furthermore, we discuss general methods of enzyme immobilization and suggest specific strategies to improve thermal stability, activity and durability of hyperthermophilic enzymes.
目前的理论一致认为,超嗜热蛋白质卓越的热稳定性似乎没有单一的独特特征。结构、动力学及其他物理化学属性协同作用,以确保蛋白质在高温下稳定性和功能性之间的微妙平衡。我们全面筛选了文献中最适温度超过100摄氏度的超嗜热酶,这些酶有可能用于多种生物技术和工业应用,以替代传统使用的、运行温度较低的高成本工程中温/嗜热酶。此外,我们讨论了酶固定化的一般方法,并提出了提高超嗜热酶热稳定性、活性和耐久性的具体策略。