Bogdanowich-Knipp S J, Jois D S, Siahaan T J
Department of Pharmaceutical Chemistry, Simons Research Laboratories, The University of Kansas, Lawrence 66047, USA.
J Pept Res. 1999 May;53(5):523-9. doi: 10.1034/j.1399-3011.1999.00055.x.
The objective of this study was to evaluate the relationship between conformational flexibility and solution stability of a linear RGD peptide (Arg-Gly-Asp-Phe-OH; 1) and a cyclic RGD peptide (cyclo-(1, 6)-Ac-Cys-Arg-Gly-Asp-Phe-Pen-NH2; 2); as a function of pH. Previously, it was found that cyclic peptide 2 was 30-fold more stable than linear peptide 1. Therefore, this study was performed to explain the increase in chemical stability based on the preferred conformation of the peptides. Molecular dynamics simulations and energy minimizations were conducted to evaluate the backbone flexibility of both peptides under simulated pH conditions of 3, 7 and 10 in the presence of water. The reactive sites for degradation for both molecules were also followed during the simulations. The backbone of linear peptide 1 exhibited more flexibility than that of cyclic peptide 2, which was reflected in the rotation about the phi and psi dihedral angles. This was further supported by the low r.m.s. deviations of the backbone atoms for peptide 2 compared with those of peptide 1 that were observed among structures sampled during the molecular dynamics simulations. The presence of a salt bridge between the side chain groups of the Arg and Asp residues was also indicated for the cyclic peptide under simulated conditions of neutral pH. The increase in stability of the cyclic peptide 2 compared with the linear peptide 1, especially at neutral pH, is due to decreased structural flexibility imposed by the ring, as well as salt bridge formation between the side chains of the Arg and Asp residues in cyclic peptide 2. This rigidity would prevent the Asp side chain carboxylic acid from orienting itself in the appropriate position for attack on the peptide backbone.
本研究的目的是评估线性RGD肽(Arg-Gly-Asp-Phe-OH;1)和环状RGD肽(环-(1,6)-Ac-Cys-Arg-Gly-Asp-Phe-Pen-NH2;2)的构象灵活性与溶液稳定性之间随pH值变化的关系。此前发现环状肽2比线性肽1稳定30倍。因此,进行本研究以基于肽的优选构象解释化学稳定性的增加。在水存在的情况下,进行分子动力学模拟和能量最小化以评估两种肽在模拟pH值3、7和10条件下的主链灵活性。在模拟过程中还追踪了两种分子的降解反应位点。线性肽1的主链比环状肽2表现出更大的灵活性,这反映在围绕φ和ψ二面角的旋转上。分子动力学模拟期间采样的结构中观察到,与肽1相比,肽2主链原子的低均方根偏差进一步支持了这一点。在中性pH模拟条件下,环状肽的Arg和Asp残基侧链基团之间也存在盐桥。环状肽2与线性肽1相比稳定性增加,特别是在中性pH下,这是由于环所施加的结构灵活性降低,以及环状肽2中Arg和Asp残基侧链之间形成盐桥。这种刚性会阻止Asp侧链羧酸将自身定向到攻击肽主链的适当位置。