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透明质酸与溶菌酶的复合凝聚层:对蛋白质结构和物理稳定性的影响

Complex coacervates of hyaluronic acid and lysozyme: effect on protein structure and physical stability.

作者信息

Water Jorrit J, Schack Malthe M, Velazquez-Campoy Adrian, Maltesen Morten J, van de Weert Marco, Jorgensen Lene

机构信息

Department of Pharmacy, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen O, Denmark.

Department of Pharmacy, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen O, Denmark; Novozymes A/S, Biopharma Application Development, Bagsvaerd, Denmark.

出版信息

Eur J Pharm Biopharm. 2014 Oct;88(2):325-31. doi: 10.1016/j.ejpb.2014.09.001. Epub 2014 Sep 16.

Abstract

Complex coacervates of hyaluronic acid and lysozyme, a model protein, were formed by ionic interaction using bulk mixing and were characterized in terms of binding stoichiometry and protein structure and stability. The complexes were formed at pH 7.2 at low ionic strength (6mM) and the binding stoichiometry was determined using solution depletion and isothermal titration calorimetry. The binding stoichiometry of lysozyme to hyaluronic acid (870 kDa) determined by solution depletion was found to be 225.9 ± 6.6 mol, or 0.1 bound lysozyme molecules per hyaluronic acid monomer. This corresponded well with that obtained by isothermal titration calorimetry of 0.09 bound lysozyme molecules per hyaluronic acid monomer. The complexation did not alter the secondary structure of lysozyme measured by Fourier-transform infrared spectroscopy overlap analysis and had no significant impact on the Tm of lysozyme determined by differential scanning calorimetry. Furthermore, the protein stability of lysozyme was found to be improved upon complexation during a 12-weeks storage study at room temperature, as shown by a significant increase in recovered protein when complexed (94 ± 2% and 102 ± 5% depending on the polymer-protein weight to weight ratio) compared to 89 ± 2% recovery for uncomplexed protein. This study shows the potential of hyaluronic acid to be used in combination with complex coacervation to increase the physical stability of pharmaceutical protein formulations.

摘要

透明质酸与作为模型蛋白的溶菌酶通过本体混合利用离子相互作用形成了复合凝聚物,并对其结合化学计量、蛋白质结构和稳定性进行了表征。这些复合物在pH 7.2、低离子强度(6mM)条件下形成,通过溶液耗尽法和等温滴定量热法确定结合化学计量。通过溶液耗尽法测定的溶菌酶与透明质酸(870 kDa)的结合化学计量为225.9±6.6摩尔,即每透明质酸单体有0.1个结合的溶菌酶分子。这与通过等温滴定量热法得到的每透明质酸单体0.09个结合的溶菌酶分子结果非常吻合。通过傅里叶变换红外光谱重叠分析测量,复合作用并未改变溶菌酶的二级结构,并且对通过差示扫描量热法测定的溶菌酶的熔点没有显著影响。此外,在室温下为期12周的储存研究中发现,复合作用提高了溶菌酶的蛋白质稳定性,与未复合蛋白质89±2%的回收率相比,复合后的蛋白质回收率显著提高(根据聚合物与蛋白质的重量比,分别为94±2%和102±5%)。这项研究表明了透明质酸与复合凝聚相结合用于提高药物蛋白质制剂物理稳定性的潜力。

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