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在应激下增强蛋白质稳定性:基于渗透剂的深共熔溶剂作为一种生物相容且稳健的稳定剂,用于在热冲击和冷冲击下稳定溶菌酶。

Enhancing protein stability under stress: osmolyte-based deep eutectic solvents as a biocompatible and robust stabilizing medium for lysozyme under heat and cold shock.

机构信息

Faculty of Food Technology and Biotechnology, University of Zagreb, Croatia.

Ruđer Bošković Institute, Zagreb, Croatia.

出版信息

Phys Chem Chem Phys. 2024 Aug 7;26(31):21040-21051. doi: 10.1039/d4cp02275k.

Abstract

In biomedical and biotechnological domains, liquid protein formulations are vital tools, offering versatility across various fields. However, maintaining protein stability in a liquid form presents challenges due to environmental factors, driving research to refine formulations for broader applications. In our recent study, we investigated the relationship between deep eutectic solvents (DESs) and the natural presence of osmolytes in specific combinations, showcasing the effectiveness of a bioinspired osmolyte-based DES in stabilizing a model protein. Recognizing the need for a more nuanced understanding of osmolyte-based DES stabilization capabilities under different storage conditions, here we broadened the scope of our osmolyte-based DES experimental screening, and delved deeper into structural changes in the enzyme under these conditions. We subjected lysozyme solutions in DESs based on various kosmotropic osmolytes (TMAO, betaine, sarcosine, DMSP, ectoine, GPC, proline, sorbitol and taurine) paired either with another kosmotropic (glycerol) or with chaotropic osmolyte urea to rigorous conditions: heat shock (at 80 °C) and repetitive freeze-thaw cycles (at -20 and -80 °C). Changes in enzyme activity, colloidal stability, and conformational alterations were then monitored using bioassays, aggregation tests, and spectroscopic techniques (FT-IR and CD). Our results demonstrate the remarkable effectiveness of osmolyte-based DES in stabilizing lysozyme under stress conditions, with sarcosine- and betaine-based DESs containing glycerol as a hydrogen bond donor showing the highest efficacy, even at high enzyme loadings up to 200 mg ml. Investigation of the individual and combined effects of the DES components on enzyme stability confirmed the synergistic behavior of the kosmotrope-urea mixtures and the cumulative effects in kosmotrope-glycerol mixtures. Additionally, we have shown that the interplay between the enzyme's active and stable (but inactive) states is highly influenced by the water content in DESs. Finally, toxicity assessments of osmolyte-based DESs using cell lines (Caco-2, HaCaT, and HeLa) revealed no risks to human health.

摘要

在生物医学和生物技术领域,液体蛋白质制剂是至关重要的工具,在各个领域具有多功能性。然而,由于环境因素的影响,保持蛋白质在液体形式下的稳定性是一个挑战,这促使研究人员改进制剂以实现更广泛的应用。在我们最近的研究中,我们研究了深共晶溶剂(DESs)与特定组合中天然存在的渗透物之间的关系,展示了基于生物灵感的渗透物的 DES 在稳定模型蛋白质方面的有效性。认识到需要更细致地了解不同储存条件下基于渗透物的 DES 稳定能力,我们在这里扩大了基于渗透物的 DES 实验筛选的范围,并更深入地研究了在这些条件下酶的结构变化。我们将基于各种亲脂性渗透物(TMAO、甜菜碱、肌氨酸、DMSP、ectoine、GPC、脯氨酸、山梨醇和牛磺酸)的 DES 中的溶菌酶溶液与另一种亲脂性(甘油)或亲水性渗透物尿素置于严格的条件下:热冲击(80°C)和反复冻融循环(-20°C 和-80°C)。然后使用生物测定法、聚集试验和光谱技术(FT-IR 和 CD)监测酶活性、胶体稳定性和构象变化。我们的结果表明,基于渗透物的 DES 在应激条件下稳定溶菌酶的效果显著,含有甘油作为氢键供体的肌氨酸和甜菜碱基 DES 显示出最高的功效,即使在高酶载量高达 200mg/ml 时也是如此。对 DES 成分对酶稳定性的单独和组合影响的研究证实了亲脂性-尿素混合物的协同行为以及亲脂性-甘油混合物的累积效应。此外,我们还表明,酶的活性和稳定(但非活性)状态之间的相互作用受 DES 中水含量的高度影响。最后,使用细胞系(Caco-2、HaCaT 和 HeLa)对基于渗透物的 DES 进行毒性评估显示对人类健康没有风险。

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