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动力学阐释了主要桦树花粉过敏原Bet v 1的蛋白水解敏感性。

Dynamics Rationalize Proteolytic Susceptibility of the Major Birch Pollen Allergen Bet v 1.

作者信息

Kamenik Anna S, Hofer Florian, Handle Philip H, Liedl Klaus R

机构信息

Center for Molecular Biosciences Innsbruck, Institute of General, Inorganic and Theoretical Chemistry, University of Innsbruck, Innsbruck, Austria.

出版信息

Front Mol Biosci. 2020 Feb 20;7:18. doi: 10.3389/fmolb.2020.00018. eCollection 2020.

Abstract

Proteolytic susceptibility during endolysosomal degradation is decisive for allergic sensitization. In the major birch pollen allergen Bet v 1 most protease cleavage sites are located within its secondary structure elements, which are inherently inaccessible to proteases. The allergen thus must unfold locally, exposing the cleavage sites to become susceptible to proteolysis. Hence, allergen cleavage rates are presumed to be linked to their fold stability, i.e., unfolding probability. Yet, these locally unfolded structures have neither been captured in experiment nor simulation due to limitations in resolution and sampling time, respectively. Here, we perform classic and enhanced molecular dynamics (MD) simulations to quantify fold dynamics on extended timescales of and two variants with higher and lower cleavage rates. Already at the nanosecond-timescale we observe a significantly higher flexibility for the destabilized variant compared to and the proteolytically stabilized mutant. Estimating the thermodynamics and kinetics of local unfolding around an initial cleavage site, we find that the Bet v 1 variant with the highest cleavage rate also shows the highest probability for local unfolding. For the stabilized mutant on the other hand we only find minimal unfolding probability. These results strengthen the link between the conformational dynamics of allergen proteins and their stability during endolysosomal degradation. The presented approach further allows atomistic insights in the conformational ensemble of allergen proteins and provides probability estimates below experimental detection limits.

摘要

内溶酶体降解过程中的蛋白水解敏感性对于过敏致敏作用至关重要。在主要的桦树花粉过敏原Bet v 1中,大多数蛋白酶切割位点位于其二级结构元件内,而这些元件本质上是蛋白酶无法接近的。因此,过敏原必须局部展开,使切割位点暴露以易于被蛋白水解。因此,推测过敏原的切割速率与其折叠稳定性相关,即展开概率。然而,由于分辨率和采样时间的限制,这些局部展开的结构在实验和模拟中均未被捕获。在此,我们进行经典和增强分子动力学(MD)模拟,以量化在较长时间尺度上的折叠动力学,以及具有较高和较低切割速率的两个变体。在纳秒时间尺度上,我们已经观察到与[原文此处可能缺失具体名称]和蛋白水解稳定的突变体相比,不稳定变体具有明显更高的灵活性。通过估计围绕初始切割位点的局部展开的热力学和动力学,我们发现切割速率最高的Bet v 1变体也显示出最高的局部展开概率。另一方面,对于稳定的突变体,我们只发现极小的展开概率。这些结果加强了过敏原蛋白的构象动力学与其在内溶酶体降解过程中的稳定性之间的联系。所提出的方法进一步允许对过敏原蛋白的构象集合进行原子尺度的洞察,并提供低于实验检测限的概率估计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/961a/7045072/a38994dce538/fmolb-07-00018-g0001.jpg

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