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脂质膜纳米受限几何结构中低温冷却下的冰晶化:时间分辨结构动力学

Ice crystallization under cryogenic cooling in lipid membrane nanoconfined geometry: Time-resolved structural dynamics.

作者信息

Baranova Iuliia, Angelova Angelina, Shepard William E, Andreasson Jakob, Angelov Borislav

机构信息

Institute of Physics, ELI Beamlines, Academy of Sciences of the Czech Republic, CZ-18221 Prague, Czech Republic; MFF, Charles University, CZ-12116 Prague, Czech Republic.

Université Paris-Saclay, CNRS, Institut Galien Paris-Saclay, F-91400 Orsay, France.

出版信息

J Colloid Interface Sci. 2023 Mar 15;634:757-768. doi: 10.1016/j.jcis.2022.12.095. Epub 2022 Dec 20.

Abstract

Time-resolved structural investigations of crystallization of water in lipid/protein/salt mesophases at cryogenic temperatures are significant for comprehension of ice nanocrystal nucleation kinetics in lipid membranous systems and can lead to a better understanding of how to experimentally retard the ice formation that obstructs the protein crystal structure determination. Here, we present a time-resolved synchrotron microfocus X-ray diffraction (TR-XRD) study based on ∼40,000 frames that revealed the dynamics of water-to-ice crystallization in a lipid/protein/salt mesophase subjected to cryostream cooling at 100 K. The monoolein/hemoglobin/salt/water system was chosen as a model composition related to protein-loaded lipid cubic phases (LCP) broadly used for the crystallization of proteins. Under confinement in the nanoscale geometry, metastable short-living cubic ice (I) rapidly crystallized well before the formation of hexagonal ice (I). The detected early nanocrystalline states of water-to-ice transformation in multicomponent systems are relevant to a broad spectrum of technologies and understanding of natural phenomena, including crystallization, physics of water nanoconfinement, and rational design of anti-freezing and cryopreservation systems.

摘要

在低温下对脂质/蛋白质/盐中间相中水结晶的时间分辨结构研究,对于理解脂质膜系统中冰纳米晶的成核动力学具有重要意义,并且有助于更好地理解如何通过实验延缓阻碍蛋白质晶体结构测定的冰形成过程。在此,我们基于约40000帧数据进行了一项时间分辨同步加速器微聚焦X射线衍射(TR-XRD)研究,揭示了在100K低温气流冷却下脂质/蛋白质/盐中间相中水到冰的结晶动力学。选择单油酸甘油酯/血红蛋白/盐/水体系作为与广泛用于蛋白质结晶的载脂蛋白脂质立方相(LCP)相关的模型组成。在纳米尺度几何结构的限制下,亚稳的短寿命立方冰(I)在六方冰(I)形成之前就迅速结晶。在多组分系统中检测到的水到冰转变的早期纳米晶态与广泛的技术以及对自然现象的理解相关,包括结晶、水纳米限域物理学以及抗冻和冷冻保存系统的合理设计。

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