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再水合后取向:通过计算再水合研究场诱导的结构变化。

Rehydration Post-orientation: Investigating Field-Induced Structural Changes via Computational Rehydration.

机构信息

Department of Chemistry - BMC, Uppsala University, Box 576, 75123, Uppsala, Sweden.

Department of Physics and Astronomy, Uppsala University, 75120, Uppsala, Sweden.

出版信息

Protein J. 2023 Jun;42(3):205-218. doi: 10.1007/s10930-023-10110-y. Epub 2023 Apr 8.

Abstract

Proteins can be oriented in the gas phase using strong electric fields, which brings advantages for structure determination using X-ray free electron lasers. Both the vacuum conditions and the electric-field exposure risk damaging the protein structures. Here, we employ molecular dynamics simulations to rehydrate and relax vacuum and electric-field exposed proteins in aqueous solution, which simulates a refinement of structure models derived from oriented gas-phase proteins. We find that the impact of the strong electric fields on the protein structures is of minor importance after rehydration, compared to that of vacuum exposure and ionization in electrospraying. The structures did not fully relax back to their native structure in solution on the simulated timescales of 200 ns, but they recover several features, including native-like intra-protein contacts, which suggests that the structures remain in a state from which the fully native structure is accessible. Our findings imply that the electric fields used in native mass spectrometry are well below a destructive level, and suggest that structures inferred from X-ray diffraction from gas-phase proteins are relevant for solution and in vivo conditions, at least after in silico rehydration.

摘要

蛋白质可以在气相中通过强电场进行定向排列,这为使用 X 射线自由电子激光进行结构测定带来了优势。真空条件和电场暴露都有损坏蛋白质结构的风险。在这里,我们使用分子动力学模拟在水溶液中重新水合和弛豫真空和电场暴露的蛋白质,这模拟了从定向气相蛋白质中衍生的结构模型的细化。我们发现,与电喷雾中的真空暴露和离子化相比,强电场对蛋白质结构的影响在重新水合后并不重要。在模拟的 200 纳秒时间尺度内,结构并没有完全恢复到其在溶液中的天然结构,但它们恢复了几个特征,包括类似于天然的蛋白质内接触,这表明结构仍然处于可接近完全天然结构的状态。我们的发现意味着用于天然质谱的电场远低于破坏性水平,并表明从气相蛋白质的 X 射线衍射推断出的结构与溶液和体内条件相关,至少在计算机重新水合后是如此。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e16/10264475/83447ef00edc/10930_2023_10110_Fig1_HTML.jpg

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