Faculty of Pure and Applied Sciences, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki 305-8573, Japan.
Biomedical Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Higashi, Tsukuba, Ibaraki 305-8566, Japan.
J Pharm Sci. 2018 Oct;107(10):2713-2719. doi: 10.1016/j.xphs.2018.06.021. Epub 2018 Jun 27.
The formulation of high-concentration protein solutions is a challenging issue for achieving subcutaneous administration. Previously, we developed a method of precipitation-redissolution using polyelectrolyte as a precipitant to produce protein solutions at high concentrations. However, the redissolution yield of proteins was insufficient. This study aims to optimize the solution conditions for practical applications by combining IgG and poly-l-(glutamic acid) (polyE). A systematic analysis of solution pH and polyE size conditions revealed that an acidic condition favors precipitation, whereas neutral pH values are more effective for the redissolution. We find that the optimal size for polyE ranged from 15,000 to 50,000. This slight modification in the procedure in comparison with previous studies increased the precipitation and redissolution yields to nearly 100%, without irreversible protein denaturation. The fully reversible IgG-polyE complex formed as a droplet structure, which is similar to a condensate of liquid-liquid phase separation. The droplet structure plays an indispensable role in the salt-induced, redissolved state, which is pertinent to the new application that takes advantage of the methods to produce highly concentrated protein solutions.
高浓度蛋白质溶液的配方是实现皮下给药的一个挑战。此前,我们开发了一种使用聚电解质作为沉淀剂的沉淀-再溶解方法,以生产高浓度的蛋白质溶液。然而,蛋白质的再溶解产率不足。本研究旨在通过结合 IgG 和聚-l-(谷氨酸)(polyE)来优化实际应用的溶液条件。通过对溶液 pH 值和 polyE 大小条件的系统分析,我们发现酸性条件有利于沉淀,而中性 pH 值更有利于再溶解。我们发现 polyE 的最佳大小范围为 15000 至 50000。与之前的研究相比,该过程的这一微小改变将沉淀和再溶解产率提高到近 100%,而不会导致蛋白质不可逆变性。形成的 IgG-polyE 复合物为液滴结构,类似于液-液相分离的凝聚。液滴结构在盐诱导的再溶解状态中起着不可或缺的作用,这与利用该方法生产高浓度蛋白质溶液的新应用有关。