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The Role of Hydroxyproline in Collagen Folding: Conformational Energy Calculations on Oligopeptides Containing Proline and Hydroxyproline

机译:羟脯氨酸在胶原折叠中的作用:包含脯氨酸和羟脯氨酸的寡肽的构象能量计算

摘要

We have observed that the rate of folding of the enzymatically hydroxylated form of poly(Gly-Pro-Pro) into the triple-helical conformation is considerably higher than that of the unhydroxylated polypeptide [R. K. Chopra and V. S. Ananthanarayanan (1982) Proc. Natl. Acad. Sci. USA 79, 7180-7184]. In this study, we examine a plausible kinetic pathway for triple-helix formation by selecting peptide models for the unhydroxylated collagen molecule, and computing their conformational energies before and after proline hydroxylation. Starting with the available data on the preferred conformations of proline- and hydroxyproline-containing peptide sequences, energy minimization was carried out on the following pairs of peptides: Gly-Ala-Pro-Gly-Ala and Gly-Ala-Hyp-Gly-Ala; Gly-Pro-Pro-Gly-Ala and Gly-Pro-Hyp-Gly-Ala; Gly-Ala-Pro-Gly-Ala-Pro and Gly-Ala-Hyp-Gly-Ala-Hyp. It was found that, with each pair of peptides, the energetically most favorable conformation (I) has an extended structure at the Gly-Ala or Gly-Pro segment and a ?-bend at the Pro-Gly or Hyp-Gly segment. In the Hyp-containing peptides, this conformation is further stabilized by a $(Hyp_{i + 2})OH..OC(Gly_i)$ hydrogen bond. Conformation I is lower in energy by about 6-13 kcal/mol of the peptide than the fully extended conformations that resemble the single collagen polypeptide chain and contain no intramolecular hydrogen bond. In contrast to the proline counterpart, the hydroxyproline-containing peptides are found capable of adopting a partially extended conformation that does not contain the eta -bend but retains the (Hyp)OH..OC(Gly) hydrogen bond. The energy of this conformation is intermediate between conformation I and the fully extended conformation. The continuation of the eta -bend along the chain is restricted by stereochemical constraints that are more severe in the latter two pairs of peptides than in the first pair. Such a restriction may be considered to trigger the "unbending" of the minimum energy conformation leading to its straightening into the fully extended conformation; the latter, in turn, would lead to triple-helix formation through favorable interchain interactions. We propose that the partially extended conformation in the Hyp-containing peptides could serve as a kinetic intermediate on the way to forming the fully extended conformation. Because of the $(Hyp_{i + 2})OH..OC(Gly_i)$ hydrogen bond, this conformation would also serve to lock the trans geometry at the Gly-Ala(Pro) and Ala(Pro)-Hyp peptide bonds, thereby enhancing the rate of their helix formation. A scheme for collagen folding in proposed on the basis of these results.
机译:我们已经观察到,聚(Gly-Pro-Pro)的酶促羟基化形式折叠成三螺旋构象的速率明显高于未羟基化多肽的折叠速率。 K.Chopra和V.S.Ananthanarayanan(1982)Proc。 Natl。学院科学USA 79,7180-7184]。在这项研究中,我们通过为未羟基化的胶原分子选择肽模型,并计算脯氨酸羟基化前后的构象能,检查了三螺旋形成的合理动力学途径。从关于含脯氨酸和羟基脯氨酸的肽序列的优选构象的可用数据开始,对以下肽对进行能量最小化:Gly-Ala-Pro-Gly-Ala和Gly-Ala-Hyp-Gly-Ala ; Gly-Pro-Pro-Gly-Ala和Gly-Pro-Hyp-Gly-Ala; Gly-Ala-Pro-Gly-Ala-Pro和Gly-Ala-Hyp-Gly-Ala-Hyp。发现在每对肽中,能量上最有利的构象(I)在Gly-Ala或Gly-Pro区段具有延伸的结构,而在Pro-Gly或Hyp-Gly区段具有β-弯曲。在含Hyp的肽中,该构象通过$(Hyp_ {i + 2})OH..OC(Gly_1)$氢键进一步稳定。构象I的能量比类似单个胶原多肽链且不包含分子内氢键的完全延伸的构象的能量低约6-13kcal / mol肽。与脯氨酸对应物相反,发现含羟基脯氨酸的肽能够采用不包含β-弯曲但保留(Hyp)OH..OC(Gly)氢键的部分延伸的构象。该构象的能量介于构象I和完全延伸的构象之间。 β-链沿链的连续性受到立体化学约束的限制,后者在后两对肽中比在第一对中更为严重。可以认为这种限制触发了最小能量构象的“未弯曲”,从而导致其伸直为完全延伸的构象。后者反过来会通过有利的链间相互作用导致三螺旋的形成。我们建议含Hyp的肽中的部分延伸的构象可以作为形成完全延伸的构象的动力学中间体。由于$(Hyp_ {i + 2})OH..OC(Gly_i)$氢键,这种构象还将用于将反式几何结构锁定在Gly-Ala(Pro)和Ala(Pro)-Hyp肽键上,从而提高其螺旋形成的速度。基于这些结果,提出了胶原蛋白折叠的方案。

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