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Protein misfolding occurs by slow diffusion across multiple barriers in a rough energy landscape

机译:蛋白质错误折叠是通过在粗糙的能量环境中跨多个壁垒的缓慢扩散而发生的

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摘要

The timescale for the microscopic dynamics of proteins during conformational transitions is set by the intrachain diffusion coefficient, D. Despite the central role of protein misfolding and aggregation in many diseases, it has proven challenging to measure D for these processes because of their heterogeneity. We used single-molecule force spectroscopy to overcome these challenges and determine D for misfolding of the prion protein PrP. Observing directly the misfolding of individual dimers into minimal aggregates, we reconstructed the energy landscape governing nonnative structure formation. Remarkably, rather than displaying multiple pathways, as typically expected for aggregation, PrP dimers were funneled into a thermodynamically stable misfolded state along a single pathway containing several intermediates, one of which blocked native folding. Using Kramers’ rate theory, D was found to be 1,000-fold slower for misfolding than for native folding, reflecting local roughening of the misfolding landscape, likely due to increased internal friction. The slow diffusion also led to much longer transit times for barrier crossing, allowing transition paths to be observed directly for the first time to our knowledge. These results open a new window onto the microscopic mechanisms governing protein misfolding.
机译:构象转变过程中蛋白质微观动力学的时标由链内扩散系数D决定。尽管蛋白质错折叠和聚集在许多疾病中起着核心作用,但由于它们的异质性,事实证明要为这些过程测量D颇具挑战性。我们使用单分子力光谱法来克服这些挑战,并确定D蛋白PrP错折叠的D。直接观察单个二聚体向最小聚集体的错误折叠,我们重建了控制非本征结构形成的能量格局。值得注意的是,PrP二聚体并没有像通常预期的那样显示出多个途径,而是沿着一条包含若干种中间体的单一途径进入了热力学稳定的错误折叠状态,其中一种中间体阻止了天然折叠。使用Kramers的速率理论,发现误折叠的D速度比自然折叠慢了1000倍,这反映出可能由于内部摩擦的增加而使误折叠景观局部变粗糙。缓慢的扩散还导致越过障碍物的渡越时间变长,从而使我们首次了解到的过渡路径是第一次。这些结果为控制蛋白质错误折叠的微观机制打开了一个新窗口。

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