Sudi Ismaila Yada, Wong Ee Lin, Joyce-Tan Kwee Hong, Shamsir Mohd Shahir, Jamaluddin Haryati, Huyop Fahrul
Faculty of Biosciences and Medical Engineering, Universiti Teknologi Malaysia, UTM Skudai, 81310 Johor Bahru, Malaysia.
Int J Mol Sci. 2012 Nov 26;13(12):15724-54. doi: 10.3390/ijms131215724.
Currently, there is no three-dimensional structure of D-specific dehalogenase (DehD) in the protein database. We modeled DehD using ab initio technique, performed molecular dynamics (MD) simulation and docking of D-2-chloropropionate (D-2CP), D-2-bromopropionate (D-2BP), monochloroacetate (MCA), monobromoacetate (MBA), 2,2-dichloropropionate (2,2-DCP), d,l-2,3-dichloropropionate (d,l-2,3-DCP), and 3-chloropropionate (3-CP) into the DehD active site. The sequences of DehD and D-2-haloacid dehalogenase (HadD) from Pseudomonas putida AJ1 have 15% sequence similarity. The model had 80% of the amino acid residues in the most favored region when compared to the crystal structure of DehI from Pseudomonas putida PP3. Docking analysis revealed that Arg107, Arg134 and Tyr135 interacted with D-2CP, and Glu20 activated the water molecule for hydrolytic dehalogenation. Single residue substitutions at 25-30 °C showed that polar residues of DehD were stable when substituted with nonpolar residues and showed a decrease in activity within the same temperature range. The molecular dynamics simulation of DehD and its variants showed that in R134A variant, Arg107 interacted with D-2CP, while in Y135A, Gln221 and Arg231 interacted with D-2CP. It is our emphatic belief that the new model will be useful for the rational design of DehDs with enhanced potentials.
目前,蛋白质数据库中没有D特异性脱卤酶(DehD)的三维结构。我们使用从头算技术对DehD进行建模,对D-2-氯丙酸(D-2CP)、D-2-溴丙酸(D-2BP)、一氯乙酸(MCA)、一溴乙酸(MBA)、2,2-二氯丙酸(2,2-DCP)、d,l-2,3-二氯丙酸(d,l-2,3-DCP)和3-氯丙酸(3-CP)进行分子动力学(MD)模拟并将其对接至DehD活性位点。恶臭假单胞菌AJ1的DehD和D-2-卤代酸脱卤酶(HadD)序列具有15%的序列相似性。与恶臭假单胞菌PP3的DehI晶体结构相比,该模型在最有利区域有80%的氨基酸残基。对接分析表明,Arg107、Arg134和Tyr135与D-2CP相互作用,Glu20激活水分子进行水解脱卤。在25-30°C下的单残基取代表明,DehD的极性残基被非极性残基取代时是稳定的,并且在相同温度范围内活性降低。DehD及其变体的分子动力学模拟表明,在R134A变体中,Arg107与D-2CP相互作用,而在Y135A中,Gln221和Arg231与D-2CP相互作用。我们坚信,新模型将有助于合理设计具有更高潜力的DehD。