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首页> 外文期刊>Journal of Molecular Biology >Structural insight into pH-induced conformational changes within the native human transthyretin tetramer.
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Structural insight into pH-induced conformational changes within the native human transthyretin tetramer.

机译:pH诱导的天然人运甲状腺素蛋白四聚体中构象变化的结构见解。

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Acidification of the transthyretin (TTR) tetramer facilitates dissociation and conformational changes in the protein, allowing alternatively folded monomers to self-assemble into insoluble amyloid fibers by a downhill polymerization mechanism in vitro. To investigate the influence of acidification on the quaternary and tertiary structures of TTR, crystal structures of wild-type human TTR at pH 4.0 and pH 3.5 have been determined to 1.7 A resolution. The acidic pH crystals are isomorphous to most of the previously reported TTR structures, containing two subunits in the asymmetric unit (the so-called A and B subunits) but forming a tetramer through crystallographic symmetry. The pH 4.0 crystal structure reveals that the native fold of the tetramer remains mostly undisturbed. In particular, subunit A of the TTR pH 4.0 structure is very similar to the wild-type TTR pH 7.4 structure with an r.m.s.d. of 0.38 A. In contrast, subunit B of the TTR pH 4.0 structure exhibits several significant changes. The EF-helix (residues 75-81) and the adjacent EF-loop (residues 82-90) show an r.m.s.d. greater than 2.0 A. The acidic residues within this region (Glu72, Asp74, Glu89, and Glu92) undergo significant conformational changes that instigate movement of the EF helix-loop region and make residues Lys70, Lys76, His88, and His90 orient their side chains toward these acidic residues. In particular, Glu89 undergoes a maximum deviation of 5.6 A, occupying Phe87's initial position in the wild-type TTR pH 7.4 structure, and points its side chain into a hydrophobic pocket of the neighboring subunit. In the pH 3.5 structure, the EF helix-loop region is completely disordered. These results demonstrate that acidic conditions increase the susceptibility of the EF helix-loop region of the TTR B subunit to undergo conformational changes and unfold, likely destabilizing the tetramer and identifying at least the initial conformational changes likely occurring within the tetramer that leads to the amyloidogenic monomer.
机译:运甲状腺素蛋白(TTR)四聚体的酸化促进了蛋白质的解离和构象变化,允许折叠的单体通过体外下坡聚合机制自组装成不溶性淀粉样蛋白纤维。为了研究酸化对TTR的四级和三级结构的影响,已确定pH 4.0和pH 3.5的野生型人TTR的晶体结构为1.7 A分辨率。酸性pH晶体与大多数先前报道的TTR结构同构,在不对称单元中包含两个亚基(所谓的A和B亚基),但通过晶体对称性形成四聚体。 pH 4.0的晶体结构表明,四聚体的天然折叠大部分保持不受干扰。特别地,TTR pH 4.0结构的亚基A与具有r.m.s.d的野生型TTR pH 7.4结构非常相似。 TTR pH 4.0结构的亚基B呈现0.38 A的明显变化。 EF-螺旋(残基75-81)和相邻的EF-环(残基82-90)显示r.m.s.d.大于2.0A。此区域内的酸性残基(Glu72,Asp74,Glu89和Glu92)经历显着的构象变化,促使EF螺旋环区域运动,并使残基Lys70,Lys76,His88和His90定向于其侧链对这些酸性残留物。尤其是,Glu89的最大偏差为5.6 A,占据了Phe87在野生型TTR pH 7.4结构中的初始位置,并将其侧链指向相邻亚基的疏水口袋。在pH 3.5结构中,EF螺旋环区域完全无序。这些结果表明,酸性条件增加了TTR B亚基的EF螺旋环区域发生构象变化和展开的敏感性,可能使四聚体不稳定并至少鉴定出可能在四聚体中导致淀粉样变性的初始构象变化。单体。

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