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结合分子动力学模拟和生物物理表征研究冻干过程中蛋白质特异性辅料对瑞替普酶的影响

Combining Molecular Dynamics Simulations and Biophysical Characterization to Investigate Protein-Specific Excipient Effects on Reteplase during Freeze Drying.

作者信息

Ko Suk Kyu, Björkengren Gabriella, Berner Carolin, Winter Gerhard, Harris Pernille, Peters Günther H J

机构信息

Department of Chemistry, Technical University of Denmark, 2800 Kongens Lyngby, Denmark.

Department of Pharmacy, Ludwig Maximilian University of Munich, 81377 Munich, Germany.

出版信息

Pharmaceutics. 2023 Jun 30;15(7):1854. doi: 10.3390/pharmaceutics15071854.

Abstract

We performed molecular dynamics simulations of Reteplase in the presence of different excipients to study the stabilizing mechanisms and to identify the role of excipients during freeze drying. To simulate the freeze-drying process, we divided the process into five distinct steps: (i) protein-excipient formulations at room temperature, (ii) the ice-growth process, (iii)-(iv) the partially solvated and fully dried formulations, and (v) the reconstitution. Furthermore, coarse-grained (CG) simulations were employed to explore the protein-aggregation process in the presence of arginine. By using a coarse-grained representation, we could observe the collective behavior and interactions between protein molecules during the aggregation process. The CG simulations revealed that the presence of arginine prevented intermolecular interactions of the catalytic domain of Reteplase, thus reducing the aggregation propensity. This suggests that arginine played a stabilizing role by interacting with protein-specific regions. From the freeze-drying simulations, we could identify several protein-specific events: (i) collapse of the domain structure, (ii) recovery of the drying-induced damages during reconstitution, and (iii) stabilization of the local aggregation-prone region via direct interactions with excipients. Complementary to the simulations, we employed nanoDSF, size-exclusion chromatography, and CD spectroscopy to investigate the effect of the freeze-drying process on the protein structure and stability.

摘要

我们在不同辅料存在的情况下对瑞替普酶进行了分子动力学模拟,以研究其稳定机制,并确定辅料在冷冻干燥过程中的作用。为了模拟冷冻干燥过程,我们将该过程分为五个不同的步骤:(i)室温下的蛋白质 - 辅料配方;(ii)冰生长过程;(iii) - (iv)部分溶剂化和完全干燥的配方;以及(v)复溶。此外,采用粗粒度(CG)模拟来探索在精氨酸存在下的蛋白质聚集过程。通过使用粗粒度表示,我们可以观察到聚集过程中蛋白质分子之间的集体行为和相互作用。CG模拟表明,精氨酸的存在阻止了瑞替普酶催化结构域的分子间相互作用,从而降低了聚集倾向。这表明精氨酸通过与蛋白质特定区域相互作用发挥了稳定作用。从冷冻干燥模拟中,我们可以识别出几个蛋白质特异性事件:(i)结构域结构的塌陷;(ii)复溶过程中干燥诱导损伤的恢复;以及(iii)通过与辅料的直接相互作用稳定局部易聚集区域。作为模拟的补充,我们采用纳米差示扫描荧光法、尺寸排阻色谱法和圆二色光谱法来研究冷冻干燥过程对蛋白质结构和稳定性的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d51/10384596/7135824a4a88/pharmaceutics-15-01854-g001.jpg

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