Lysozyme–Sucrose Interactions in the Solid State: Glass Transition, Denaturation, and the Effect of Residual Water

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL Molecular Pharmaceutics Pub Date : 2023-08-09 DOI:10.1021/acs.molpharmaceut.3c00403
Ekaterina Bogdanova, Sebastian Lages, Tuan Phan-Xuan, Md. Arif Kamal, Ann Terry, Anna Millqvist Fureby and Vitaly Kocherbitov*, 
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Abstract

The freeze-drying of proteins, along with excipients, offers a solution for increasing the shelf-life of protein pharmaceuticals. Using differential scanning calorimetry, thermogravimetric analysis, sorption calorimetry, and synchrotron small-angle X-ray scattering (SAXS), we have characterized the properties at low (re)hydration levels of the protein lysozyme, which was freeze-dried together with the excipient sucrose. We observe that the residual moisture content in these samples increases with the addition of lysozyme. This results from an increase in equilibrium water content with lysozyme concentration at constant water activity. Furthermore, we also observed an increase in the glass transition temperature (Tg) of the mixtures with increasing lysozyme concentration. Analysis of the heat capacity step of the mixtures indicates that lysozyme does not participate in the glass transition of the sucrose matrix; as a result, the observed increase in the Tg of the mixtures is the consequence of the confinement of the amorphous sucrose domains in the interstitial space between the lysozyme molecules. Sorption calorimetry experiments demonstrate that the hydration behavior of this formulation is similar to that of the pure amorphous sucrose, while the presence of lysozyme only shifts the sucrose transitions. SAXS analysis of amorphous lysozyme–sucrose mixtures and unfolding of lysozyme in this environment show that prior to unfolding, the size and shape of lysozyme in a solid sucrose matrix are consistent with its native state in an aqueous solution. The results obtained from our study will provide a better understanding of the low hydration behavior of protein–excipient mixtures and support the improved formulation of biologics.

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溶菌酶-蔗糖在固体状态下的相互作用:玻璃化转变、变性和残余水的影响
蛋白质和辅料的冷冻干燥为延长蛋白质药物的保质期提供了一种解决方案。利用差示扫描量热法、热重分析、吸附量热法和同步小角度x射线散射(SAXS),我们表征了蛋白溶菌酶在低(再)水化水平下的性质,并将其与赋形剂蔗糖一起冷冻干燥。我们观察到,这些样品中的残余水分含量随着溶菌酶的加入而增加。这是由于在恒定的水活度下溶菌酶浓度增加了平衡含水量。此外,我们还观察到随着溶菌酶浓度的增加,混合物的玻璃化转变温度(Tg)也增加。混合物的热容阶跃分析表明,溶菌酶不参与蔗糖基质的玻璃化转变;因此,观察到的混合物Tg的增加是在溶菌酶分子之间的间隙空间中限制无定形蔗糖结构域的结果。吸附量热实验表明,该配方的水化行为与纯无定形蔗糖相似,而溶菌酶的存在只是改变了蔗糖的转变。无定形溶菌酶-蔗糖混合物的SAXS分析以及在这种环境下溶菌酶的展开表明,在展开之前,溶菌酶在固体蔗糖基质中的大小和形状与其在水溶液中的天然状态一致。从我们的研究中获得的结果将更好地理解蛋白质-赋形剂混合物的低水化行为,并支持生物制剂的改进配方。
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来源期刊
Molecular Pharmaceutics
Molecular Pharmaceutics 医学-药学
CiteScore
8.00
自引率
6.10%
发文量
391
审稿时长
2 months
期刊介绍: Molecular Pharmaceutics publishes the results of original research that contributes significantly to the molecular mechanistic understanding of drug delivery and drug delivery systems. The journal encourages contributions describing research at the interface of drug discovery and drug development. Scientific areas within the scope of the journal include physical and pharmaceutical chemistry, biochemistry and biophysics, molecular and cellular biology, and polymer and materials science as they relate to drug and drug delivery system efficacy. Mechanistic Drug Delivery and Drug Targeting research on modulating activity and efficacy of a drug or drug product is within the scope of Molecular Pharmaceutics. Theoretical and experimental peer-reviewed research articles, communications, reviews, and perspectives are welcomed.
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