Watts C R, Lovas S, Murphy R F
Department of Biomedical Sciences, School of Medicine, Creighton University, Omaha, Nebraska 68178, USA.
Proteins. 1998 Nov 15;33(3):396-407.
AMBER v. 4.1 force field in 1.5 ns NPT molecular dynamics simulations of murine epidermal growth factor (mEGF), human epidermal growth factor (hEGF), and human transforming growth factor-alpha (hTGF-alpha) structures with explicit TIP3P solvation were used to investigate differences in backbone stability, changes in secondary structure, interdomain flexibility, and weakly polar interactions. Backbone root mean square deviations of sections of each peptide show that the most stable regions in mEGF and hEGF are the A-, B-, and C-loops, whereas the most stable regions in hTGF-alpha are the A- and B-loops. The secondary structure in the B-loops of mEGF and hEGF differ significantly from the nuclear magnetic resonance (NMR) structures of mEGF and hEGF. The position and type of turns in the B-loop of mEGF and hEGF increase the interstrand distance of the antiparallel beta-sheets thereby disrupting their structure. The interdomain flexibility of simulated hTGF-alpha structure is greater than in either mEGF or hEGF. The phi, psi dihedrals of hTGF-alpha occupy two distinct populations of phase space corresponding to either a Ceq7 or an alpha-helical conformation. This change in dihedral angle is stabilized by Phe15 with Arg42 and Phe17 with Arg42 N-pi weakly polar interactions that are present only in hTGF-alpha but not in mEGF or hEGF.
在1.5纳秒的NPT分子动力学模拟中,采用AMBER v. 4.1力场,对小鼠表皮生长因子(mEGF)、人表皮生长因子(hEGF)和人转化生长因子-α(hTGF-α)结构进行显式TIP3P溶剂化处理,以研究主链稳定性差异、二级结构变化、结构域间灵活性和弱极性相互作用。各肽段的主链均方根偏差表明,mEGF和hEGF中最稳定的区域是A环、B环和C环,而hTGF-α中最稳定的区域是A环和B环。mEGF和hEGF的B环中的二级结构与mEGF和hEGF的核磁共振(NMR)结构有显著差异。mEGF和hEGF的B环中转角的位置和类型增加了反平行β折叠的链间距离,从而破坏了它们的结构。模拟的hTGF-α结构的结构域间灵活性大于mEGF或hEGF。hTGF-α的φ、ψ二面角占据相空间的两个不同群体,分别对应Ceq7或α螺旋构象。这种二面角的变化通过Phe15与Arg42以及Phe17与Arg42的N-π弱极性相互作用得以稳定,这些相互作用仅存在于hTGF-α中,而不存在于mEGF或hEGF中。