Khan Faez Iqbal, Nizami Bilal, Anwer Razique, Gu Ke-Ren, Bisetty Krishna, Hassan Md Imtaiyaz, Wei Dong-Qing
a School of Chemistry and Chemical Engineering , Henan University of Technology , Zhengzhou 450001 , Henan , China.
b School of Pharmacy and Pharmacology , University of KwaZulu-Natal , Durban 4000 , South Africa.
J Biomol Struct Dyn. 2017 Aug;35(10):2123-2135. doi: 10.1080/07391102.2016.1206837. Epub 2016 Jul 20.
Previous experimental studies on thermostable lipase from Shewanella putrefaciens suggested the maximum activity at higher temperatures, but with little information on its conformational profile. In this study, the three-dimensional structure of lipase was predicted and a 60 ns molecular dynamics (MD) simulation was carried out at temperatures ranging from 300 to 400 K to better understand its thermostable nature at the molecular level. MD simulations were performed in order to predict the optimal activity of thermostable lipase. The results suggested strong conformational temperature dependence. The thermostable lipase maintained its bio-active conformation at 350 K during the 60 ns MD simulations.
先前对腐败希瓦氏菌来源的耐热脂肪酶进行的实验研究表明,该酶在较高温度下具有最大活性,但关于其构象特征的信息较少。在本研究中,预测了脂肪酶的三维结构,并在300至400 K的温度范围内进行了60纳秒的分子动力学(MD)模拟,以在分子水平上更好地理解其耐热性质。进行MD模拟是为了预测耐热脂肪酶的最佳活性。结果表明其构象对温度有很强的依赖性。在60纳秒的MD模拟过程中,耐热脂肪酶在350 K时保持其生物活性构象。