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Comparative Study on Hyaluronic Acid Binding to MurineSAA1.1 and SAA2.2

机译:透明质酸与小鼠结合的比较研究SAA1.1和SAA2.2

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摘要

Persistently high plasma levels of serum amyloid A (SAA) may induce AA amyloidosis in various organs causing their dysfunction. Although SAA isoforms share a high degree of homology, only the SAA1.1 isoform is found in amyloid deposits. SAA1.1 misfolding is a nucleation-dependent process with dimer and trimer formation playing a major role in SAA fibril formation through self-catalyzed recruitment of native SAA molecules. Yet, a structural model of initial SAA oligomerization is still missing. In this study, we constructed a loosely associated model for murine SAA1.1 and SAA2.2 dimers in the presence or absence of hyaluronic acid as an exemplary glycosaminoglycan, a factor known to facilitate SAA fibril formation. Molecular dynamics simulations predicted that hyaluronic acid finally stabilized in a different binding pocket of the pathogenic SAA1.1 dimer compared to the nonpathogenic SAA2.2 dimer. Besides, Markov state modeling points to dynamic behavioral differences between the linker region of SAA1.1 and SAA2.2 and identifies a state unique to pathogenic SAA1.1 while bound to hyaluronic acid.The presence or absence of hyaluronic acid, as well as the dimer interfaceswitch, affects dynamic behavior and possible oligomeric states, proposinga conceivable clue to the deviant pathogenicity of the two SAA isoforms.
机译:血浆淀粉样蛋白A(SAA)持续较高的血浆水平可能会在各种器官中引起AA淀粉样变性,从而导致其功能障碍。尽管SAA亚型具有高度的同源性,但在淀粉样蛋白沉积物中仅发现SAA1.1亚型。 SAA1.1错折叠是一个成核依赖性的过程,二聚体和三聚体的形成在SAA原纤维的形成中起主要作用,该过程通过自催化招募天然SAA分子来实现。但是,仍然缺少初始SAA低聚的结构模型。在这项研究中,我们构建了透明质酸作为一种示例性的糖胺聚糖(一种已知可促进SAA原纤维形成的因素)的鼠类SAA1.1和SAA2.2二聚体的松散关联模型。分子动力学模拟预测,与非致病性SAA2.2二聚体相比,透明质酸最终稳定在病原性SAA1.1二聚体的不同结合口袋中。此外,马尔可夫状态建模指出了SAA1.1和SAA2.2的连接子区域之间的动态行为差异,并确定了病原性SAA1.1与透明质酸结合时的唯一状态。透明质酸的存在与否以及二聚体界面提议影响动态行为和可能的低聚状态这是两种SAA亚型异常致病性的可能线索。

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