An outcome-defining role for the triple-helical domain in regulating collagen-I assembly.

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Kathryn M Yammine, Rasia C Li, Isabella M Borgula, Sophia Mirda Abularach, Andrew S DiChiara, Ronald T Raines, Matthew D Shoulders
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引用次数: 0

Abstract

Collagens are the foundational component of diverse tissues, including skin, bone, cartilage, and basement membranes, and are the most abundant protein class in animals. The fibrillar collagens are large, complex, multidomain proteins, all containing the characteristic triple helix motif. The most prevalent collagens are heterotrimeric, meaning that cells express at least two distinctive procollagen polypeptides that must assemble into specific heterotrimer compositions. The molecular mechanisms ensuring correct heterotrimeric assemblies are poorly understood - even for the most common collagen, type-I. The longstanding paradigm is that assembly is controlled entirely by the ~30 kDa globular C-propeptide (C-Pro) domain. Still, this dominating model for procollagen assembly has left many questions unanswered. Here, we show that the C-Pro paradigm is incomplete. In addition to the critical role of the C-Pro domain in templating assembly, we find that the amino acid sequence near the C terminus of procollagen's triple-helical domain plays an essential role in defining procollagen assembly outcomes. These sequences near the C terminus of the triple-helical domain encode conformationally stabilizing features that ensure only desirable C-Pro-mediated trimeric templates are committed to irreversible triple-helix folding. Incorrect C-Pro trimer assemblies avoid commitment to triple-helix formation thanks to destabilizing features in the amino acid sequences of their triple helix. Incorrect C-Pro assemblies are consequently able to dissociate and search for new binding partners. These findings provide a distinctive perspective on the mechanism of procollagen assembly, revealing the molecular basis by which incorrect homotrimer assemblies are avoided and setting the stage for a deeper understanding of the biogenesis of this ubiquitous protein.

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三重螺旋结构域在调节胶原蛋白-I 组装中的决定性作用。
胶原蛋白是皮肤、骨骼、软骨和基底膜等多种组织的基础成分,也是动物体内含量最高的一类蛋白质。纤维状胶原是大型、复杂的多域蛋白质,都含有特征性的三螺旋结构。最常见的胶原蛋白是异源三聚体,这意味着细胞至少表达两种不同的原胶原多肽,它们必须组装成特定的异源三聚体。即使是最常见的 I 型胶原蛋白,确保其正确异源三聚体组装的分子机制也鲜为人知。长期以来,人们一直认为组装完全由约 30 kDa 的球状 C-丙肽(C-Pro)结构域控制。尽管如此,这种胶原蛋白组装的主要模式仍留下了许多未解之谜。在这里,我们证明了 C-Pro 模式是不完整的。除了 C-Pro 结构域在模板组装中的关键作用外,我们还发现原胶原蛋白三重螺旋结构域 C 端附近的氨基酸序列在确定原胶原蛋白组装结果方面起着至关重要的作用。这些靠近三重螺旋结构域 C 末端的序列编码了构象稳定特征,确保只有理想的 C-Pro 介导的三聚体模板才能进行不可逆的三重螺旋折叠。不正确的 C-Pro 三聚体组装由于其三重螺旋氨基酸序列中的不稳定特征而避免了三重螺旋的形成。因此,不正确的 C-Pro 组合能够解离并寻找新的结合伙伴。这些发现为胶原蛋白的组装机制提供了一个独特的视角,揭示了避免不正确的同源三聚体组装的分子基础,为更深入地了解这种无处不在的蛋白质的生物发生奠定了基础。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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