Amini-Bayat Zahra, Hosseinkhani Saman, Jafari Rahim, Khajeh Khosro
Department of Biochemistry, Tarbiat Modares University, Tehran, Iran.
Biochim Biophys Acta. 2012 Feb;1824(2):350-8. doi: 10.1016/j.bbapap.2011.11.003. Epub 2011 Dec 2.
Firefly luciferase is a protein with a large N-terminal and a small C-terminal domain. B-factor analysis shows that its C-terminal is much more flexible than its N-terminal. Studies on hyperthermophile proteins have been shown that the increased thermal stability of hyperthermophile proteins is due to their enhanced conformational rigidity and the relationship between flexibility, stability and function in most of proteins is on debate. Two mutations (D474K and D476N) in the most flexible region of firefly luciferase were designed. Thermostability analysis shows that D476N mutation doesn't have any significant effect but D474K mutation destabilized protein. On the other hand, flexibility analysis using dynamic quenching and limited proteolysis demonstrates that D474K mutation became much more flexible than wild type although D476N doesn't have any significant difference. Intrinsic and ANS fluorescence studies demonstrate that D476N mutation is brought about by structural changes without significant effect on thermostability and flexibility. Molecular modeling reveals that disruption of a salt bridge between D(474) and K(445) accompanying with some H-bond deletion may be involved in destabilization of D474K mutant.
萤火虫荧光素酶是一种具有大的N端和小的C端结构域的蛋白质。B因子分析表明,其C端比N端更具柔性。对嗜热蛋白的研究表明,嗜热蛋白热稳定性的提高是由于其构象刚性增强,而大多数蛋白质中柔性、稳定性和功能之间的关系仍存在争议。在萤火虫荧光素酶最具柔性的区域设计了两个突变(D474K和D476N)。热稳定性分析表明,D476N突变没有任何显著影响,但D474K突变使蛋白质不稳定。另一方面,使用动态猝灭和有限蛋白酶解的柔性分析表明,D474K突变比野生型变得更加柔性,尽管D476N没有任何显著差异。内在荧光和ANS荧光研究表明,D476N突变是由结构变化引起的,对热稳定性和柔性没有显著影响。分子建模显示,D(474)和K(445)之间盐桥的破坏以及一些氢键的缺失可能与D474K突变体的不稳定有关。