Patel Sunita, Balaji Petety V, Sasidhar Yellamraju U
Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400 076, India.
J Pept Sci. 2007 May;13(5):314-26. doi: 10.1002/psc.843.
The peptide TGAAKAVALVL from glyceraldehyde-3-phosphate dehydrogenase adopts a helical conformation in the crystal structure and is a site for two hydrated helical segments, which are thought to be helical folding intermediates. Overlapping sequences of four to five residues from the peptide, sample both helical and strand conformations in known protein structures, which are dissimilar to glyceraldehyde-3-phosphate dehydrogenase suggesting that the peptide may have a structural ambivalence. Molecular dynamics simulations of the peptide sequence performed for a total simulation time of 1.2 micros, starting from the various initial conformations using GROMOS96 force field under NVT conditions, show that the peptide samples a large number of conformational forms with transitions from alpha-helix to beta-hairpin and vice versa. The peptide, therefore, displays a structural ambivalence. The mechanism from alpha-helix to beta-hairpin transition and vice versa reveals that the compact bends and turns conformational forms mediate such conformational transitions. These compact structures including helices and hairpins have similar hydrophobic radius of gyration (Rgh) values suggesting that similar hydrophobic interactions govern these conformational forms. The distribution of conformational energies is Gaussian with helix sampling lowest energy followed by the hairpins and coil. The lowest potential energy of the full helix may enable the peptide to take up helical conformation in the crystal structure of the glyceraldehyde-3-phosphate dehydrogenase, even though the peptide has a preference for hairpin too. The relevance of folding and unfolding events observed in our simulations to hydrophobic collapse model of protein folding are discussed.
来自甘油醛 - 3 - 磷酸脱氢酶的肽TGAAKAVALVL在晶体结构中呈螺旋构象,是两个水合螺旋片段的位点,这两个片段被认为是螺旋折叠中间体。该肽四到五个残基的重叠序列在已知蛋白质结构中呈现螺旋和链状构象,这些结构与甘油醛 - 3 - 磷酸脱氢酶不同,表明该肽可能具有结构矛盾性。使用GROMOS96力场在NVT条件下,从各种初始构象开始,对该肽序列进行了总模拟时间为1.2微秒的分子动力学模拟,结果表明该肽呈现出大量构象形式,包括从α - 螺旋到β - 发夹的转变以及反之亦然。因此,该肽表现出结构矛盾性。从α - 螺旋到β - 发夹转变以及反之亦然的机制表明,紧凑的弯曲和转角构象形式介导了这种构象转变。这些包括螺旋和发夹的紧凑结构具有相似的疏水回转半径(Rgh)值,表明相似的疏水相互作用支配这些构象形式。构象能量分布呈高斯分布,螺旋构象采样的能量最低,其次是发夹构象和卷曲构象。全螺旋的最低势能可能使该肽在甘油醛 - 3 - 磷酸脱氢酶的晶体结构中呈现螺旋构象,尽管该肽也倾向于发夹构象。我们讨论了在模拟中观察到的折叠和去折叠事件与蛋白质折叠疏水塌缩模型的相关性。