School of Cancer Sciences, University of Birmingham, Birmingham, United Kingdom.
PLoS One. 2013 Jul 29;8(7):e69767. doi: 10.1371/journal.pone.0069767. Print 2013.
Envoplakin, periplakin and desmoplakin are cytoskeletal proteins that provide structural integrity within the skin and heart by resisting shear forces. Here we reveal the nature of unique hinges within their plakin domains that provides divergent degrees of flexibility between rigid long and short arms composed of spectrin repeats. The range of mobility of the two arms about the hinge is revealed by applying the ensemble optimization method to small-angle X-ray scattering data. Envoplakin and periplakin adopt 'L' shaped conformations exhibiting a 'helicopter propeller'-like mobility about the hinge. By contrast desmoplakin exhibits essentially unrestricted mobility by 'jack-knifing' about the hinge. Thus the diversity of molecular jointing that can occur about plakin hinges includes 'L' shaped bends, 'U' turns and fully extended 'I' orientations between rigid blocks of spectrin repeats. This establishes specialised hinges in plakin domains as a key source of flexibility that may allow sweeping of cellular spaces during assembly of cellular structures and could impart adaptability, so preventing irreversible damage to desmosomes and the cell cytoskeleton upon exposure to mechanical stress.
Envoplakin、periplakin 和 desmoplakin 是细胞骨架蛋白,通过抵抗剪切力为皮肤和心脏提供结构完整性。在这里,我们揭示了它们的 plakins 结构域中独特铰链的性质,这些铰链为由 spectrin 重复组成的刚性长臂和短臂之间提供了不同程度的灵活性。通过将集合优化方法应用于小角度 X 射线散射数据,揭示了两个臂围绕铰链的移动范围。Envoplakin 和 periplakin 采用“L”形构象,在铰链处表现出“直升机螺旋桨”样的运动。相比之下,desmoplakin 围绕铰链的运动基本上是无限制的,通过“折刀”式运动。因此,围绕 plakins 铰链发生的分子连接的多样性包括“L”形弯曲、“U”形转弯和刚性 spectrin 重复块之间完全伸展的“I”取向。这将 plakins 结构域中的专门铰链确立为灵活性的关键来源,这可能允许在细胞结构组装过程中对细胞空间进行清扫,并赋予适应性,从而防止在受到机械应力时细胞连接和细胞骨架的不可逆损伤。