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Alpha-helical protein domains unify strength and robustness through hierarchical nanostructures

机译:α-螺旋蛋白结构域通过分层纳米结构统一强度和鲁棒性

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摘要

Hierarchical nanostructures, ranging through atomistic, molecular and macroscopic scales, represent universal features of biological protein materials. Here we show for the case of alpha-helical (AH) protein domains that this use of molecular hierarchies within the structural arrangement leads to an extended physical dimension in the material design space that resolves the conflict between disparate material properties such as strength and robustness, a limitation faced by many synthetic materials. An optimal combination of redundancies at different hierarchical levels enables superior mechanical performance without additional material use. Our analysis is facilitated by the application of a Hierarchical Bell model (HBM), which explicitly considers the hierarchical architecture of H-bonds within the protein structure, providing a structure-property relationship of strength properties of AH protein nanostructures. The HBM is validated by large-scale molecular dynamics simulations of several model protein structures. Our findings may enable the development of self-assembled de novo bioinspired nanomaterials based on peptide and protein building blocks, and could help in elucidating the mechanistic role of AHs in cell signaling and mechanotransduction.
机译:从原子,分子和宏观尺度上看,分层的纳米结构代表了生物蛋白质材料的普遍特征。在这里,对于α螺旋(AH)蛋白质域,我们证明了在结构排列中使用分子层次结构会导致材料设计空间中的物理尺寸扩展,从而解决了不同材料特性(例如强度和坚固性)之间的冲突,许多合成材料面临的局限性。不同层次级别的冗余的最佳组合可实现出色的机械性能,而无需额外使用材料。我们的分析是通过应用Hierarchical Bell模型(HBM)来促进的,该模型明确考虑了蛋白质结构内H键的层次结构,从而提供了AH蛋白纳米结构强度特性的结构性质关系。通过对几种模型蛋白质结构的大规模分子动力学模拟验证了HBM。我们的发现可能使基于肽和蛋白质构件的自组装生物启发纳米材料的开发成为可能,并有助于阐明AH在细胞信号传导和机械转导中的作用。

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