首页> 外文期刊>Journal of Molecular Biology >Differential unfolding of alpha1 and alpha2 chains in type I collagen and collagenolysis.
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Differential unfolding of alpha1 and alpha2 chains in type I collagen and collagenolysis.

机译:I型胶原蛋白和胶原蛋白溶解过程中alpha1和alpha2链的差异展开。

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Collagenolysis plays a central role in many disease processes and a detailed understanding of the mechanism of collagen degradation is of immense interest. While a considerable body of information about collagenolysis exists, the details of the underlying molecular mechanism are unclear. Therefore, to further our understanding of the precise mechanism of collagen degradation, we used molecular dynamics simulations to explore the structure of human type I collagen in the vicinity of the collagenase cleavage site. Since post-translational proline hydroxylation is an important step in the synthesis of collagen chains, we used the DNA sequence for the alpha1 and alpha2 chains of human type I collagen, and the known amino acid sequences for bovine and chicken type I collagen, to infer which prolines are hydroxylated in the vicinity of the collagenase cleavage site. Simulations of type I collagen in this region suggest that partial unfolding of the alpha2 chain is energetically preferred relative to unfolding of alpha1 chains. Localized unfolding of the alpha2 chain leads to the formation of a structure that has disrupted hydrogen bonds N-terminal to the collagenase cleavage site. Our data suggest that this disruption in hydrogen bonding pattern leads to increased chain flexibility, thereby enabling the alpha2 chain to sample different partially unfolded states. Surprisingly, our data also imply that alpha2 chain unfolding is mediated by the non-hydroxylation of a proline residue that is N-terminal to the cleavage site in alpha1 chains. These results suggest that hydroxylation on one chain (alpha1) can affect the structure of another chain (alpha2), and point to a critical role for the non-hydroxylation of proline residues near the collagenase cleavage site.
机译:胶原蛋白水解在许多疾病过程中起着核心作用,对胶原蛋白降解机理的详细了解引起了极大的兴趣。尽管存在大量有关胶原蛋白水解的信息,但尚不清楚潜在分子机制的细节。因此,为了进一步了解胶原蛋白降解的精确机制,我们使用分子动力学模拟来探索胶原酶切割位点附近的人类I型胶原蛋白的结构。由于翻译后脯氨酸的羟基化是胶原链合成中的重要步骤,因此我们使用人I型胶原蛋白的alpha1和alpha2链的DNA序列以及牛和鸡I型胶原蛋白的已知氨基酸序列来推断脯氨酸在胶原酶切割位点附近被羟基化。在该区域中I型胶原的模拟表明,相对于α1链的展开,在能量上优选α2链的部分展开。 alpha2链的局部展开导致形成破坏了胶原酶裂解位点N端氢键的结构。我们的数据表明,氢键合模式的这种破坏导致链柔性增加,从而使α2链能够采样不同的部分未折叠状态。出乎意料的是,我们的数据还暗示α2链的解链是由脯氨酸残基的非羟基化介导的,脯氨酸残基位于α1链中裂解位点的N端。这些结果表明,一条链(α1)上的羟基化会影响另一条链(α2)的结构,并指出胶原酶切割位点附近脯氨酸残基的非羟基化至关重要。

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