Centre for Biological Sciences, University of Southampton, Southampton SO17 1BJ, UK.
Sector of Amyloid Research, Institute of Biotechnology, Life Sciences Centre, Vilnius University, LT-10257 Vilnius, Lithuania.
Int J Mol Sci. 2023 Aug 25;24(17):13200. doi: 10.3390/ijms241713200.
The calcium-binding protein S100A9 is recognized as an important component of the brain neuroinflammatory response to the onset and development of neurodegenerative disease. S100A9 is intrinsically amyloidogenic and in vivo co-aggregates with amyloid-β peptide and α-synuclein in Alzheimer's and Parkinson's diseases, respectively. It is widely accepted that calcium dyshomeostasis plays an important role in the onset and development of these diseases, and studies have shown that elevated levels of calcium limit the potential for S100A9 to adopt a fibrillar structure. The exact mechanism by which calcium exerts its influence on the aggregation process remains unclear. Here we demonstrate that despite S100A9 exhibiting α-helical secondary structure in the absence of calcium, the protein exhibits significant plasticity with interconversion between different conformational states occurring on the micro- to milli-second timescale. This plasticity allows the population of conformational states that favour the onset of fibril formation. Magic-angle spinning solid-state NMR studies of the resulting S100A9 fibrils reveal that the S100A9 adopts a single structurally well-defined rigid fibrillar core surrounded by a shell of approximately 15-20 mobile residues, a structure that persists even when fibrils are produced in the presence of calcium ions. These studies highlight how the dysregulation of metal ion concentrations can influence the conformational equilibria of this important neuroinflammatory protein to influence the rate and nature of the amyloid deposits formed.
钙结合蛋白 S100A9 被认为是大脑神经炎症反应对神经退行性疾病的发生和发展的重要组成部分。S100A9 本身具有淀粉样特性,并且在体内分别与阿尔茨海默病和帕金森病中的淀粉样β肽和α-突触核蛋白聚集。人们普遍认为钙稳态失调在这些疾病的发生和发展中起着重要作用,并且研究表明,钙水平升高限制了 S100A9 形成纤维结构的潜力。钙对聚集过程施加影响的确切机制仍不清楚。在这里,我们证明尽管 S100A9 在没有钙的情况下表现出 α-螺旋二级结构,但该蛋白具有显著的可塑性,不同构象状态之间的转换发生在微秒至毫秒的时间尺度上。这种可塑性允许有利于纤维形成起始的构象状态的种群。对所得 S100A9 纤维进行魔角旋转固态 NMR 研究表明,S100A9 采用单一结构上定义明确的刚性纤维状核心,周围环绕着大约 15-20 个可移动残基的壳,即使在存在钙离子的情况下产生纤维时,该结构也得以维持。这些研究强调了金属离子浓度的失调如何影响这种重要的神经炎症蛋白的构象平衡,以影响形成的淀粉样沉积物的速率和性质。