Impact of freezing on pH of buffered solutions and consequences for monoclonal antibody aggregation

化学 组氨酸 色谱法 溶解度 低温保护剂 特里斯 乙酸钠 结晶 共晶体系 生物化学 有机化学 低温保存 氨基酸 生物 细胞生物学 胚胎 合金
作者
Parag Kolhe,Elizabeth Amend,Satish Kumar Singh
出处
期刊:Biotechnology Progress [American Chemical Society]
卷期号:26 (3): 727-733 被引量:167
标识
DOI:10.1002/btpr.377
摘要

Freezing of biologic drug substance at large scale is an important unit operation that enables manufacturing flexibility and increased use-period for the material. Stability of the biologic in frozen solutions is associated with a number of issues including potentially destabilizing pH changes. The pH changes arise from temperature-associated change in the pK(a)s, solubility limitations, eutectic crystallization, and cryoconcentration. The pH changes for most of the common protein formulation buffers in the frozen state have not been systematically measured. Sodium phosphate buffer, a well-studied system, shows the greatest change in pH when going from +25 to -30 degrees C. Among the other buffers, histidine hydrochloride, sodium acetate, histidine acetate, citrate, and succinate, less than 1 pH unit change (increase) was observed over the temperature range from +25 to -30 degrees C, whereas Tris-hydrochloride had an approximately 1.2 pH unit increase. In general, a steady increase in pH was observed for all these buffers once cooled below 0 degrees C. A formulated IgG2 monoclonal antibody in histidine buffer with added trehalose showed the same pH behavior as the buffer itself. This antibody in various formulations was subject to freeze/thaw cycling representing a wide process (phase transition) time range, reflective of practical situations. Measurement of soluble aggregates after repeated freeze-thaw cycles shows that the change in pH was not a factor for aggregate formation in this case, which instead is governed by the presence or absence of noncrystallizing cryoprotective excipients. In the absence of a cryoprotectant, longer phase transition times lead to higher aggregation.
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