Tahan A, Monajjemi M
Semnan Branch, Islamic Azad University, Semnan, Iran.
Acta Biotheor. 2011 Dec;59(3-4):291-312. doi: 10.1007/s10441-011-9137-x. Epub 2011 Jun 28.
Quantum mechanical and molecular dynamics methods were used to analyze the structure and stability of neutral and zwitterionic configurations of the extracted active site sequence from a Burkholderia cepacia lipase, histidyl-seryl-glutamin (His86-Ser87-Gln88) and its mutated form, histidyl-cysteyl-glutamin (His86-Cys87-Gln88) in vacuum and different solvents. The effects of solvent dielectric constant, explicit and implicit water molecules and side chain mutation on the structure and stability of this sequence in both neutral and zwitterionic forms are represented. The quantum mechanics computations represent that the relative stability of zwitterionic and neutral configurations depends on the solvent structure and its dielectric constant. Therefore, in vacuum and the considered non-polar solvents, the neutral form of the interested sequences is more stable than the zwitterionic form, while their zwitterionic form is more stable than the neutral form in the aqueous solution and the investigated polar solvents in most cases. However, on the potential energy surfaces calculated, there is a barrier to proton transfer from the positively charged ammonium group to the negatively charged carboxylat group or from the ammonium group to the adjacent carbonyl oxygen and or from side chain oxygen and sulfur to negatively charged carboxylat group. Molecular dynamics simulations (MD) were also performed by using periodic boundary conditions for the zwitterionic configuration of the hydrated molecules in a box of water molecules. The obtained results demonstrated that the presence of explicit water molecules provides the more compact structures of the studied molecules. These simulations also indicated that side chain mutation and replacement of sulfur with oxygen leads to reduction of molecular flexibility and packing.
采用量子力学和分子动力学方法,分析了洋葱伯克霍尔德菌脂肪酶中提取的活性位点序列组氨酸-丝氨酸-谷氨酰胺(His86-Ser87-Gln88)及其突变形式组氨酸-半胱氨酸-谷氨酰胺(His86-Cys87-Gln88)在真空和不同溶剂中的中性和两性离子构型的结构与稳定性。阐述了溶剂介电常数、显式和隐式水分子以及侧链突变对该序列中性和两性离子形式的结构与稳定性的影响。量子力学计算表明,两性离子和中性构型的相对稳定性取决于溶剂结构及其介电常数。因此,在真空和所考虑的非极性溶剂中,相关序列的中性形式比两性离子形式更稳定,而在水溶液和大多数情况下所研究的极性溶剂中,其两性离子形式比中性形式更稳定。然而,在计算出的势能面上,存在质子从带正电的铵基团转移到带负电的羧酸盐基团、或从铵基团转移到相邻羰基氧、和/或从侧链氧和硫转移到带负电的羧酸盐基团的势垒。还通过对水分子盒中两性离子构型的水合分子使用周期性边界条件进行了分子动力学模拟(MD)。所得结果表明,显式水分子的存在使所研究分子的结构更紧凑。这些模拟还表明,侧链突变以及用氧取代硫会导致分子柔韧性和堆积的降低。