Concomitant Precipitation of Solid-State Miscible Product-Impurity Phases in Solution Crystallization - Part 2: Industrial Case Studies

被引:4
作者
Nordstrom, Fredrik L. [1 ]
Paolello, Mitchell [3 ]
Yao, Na [1 ]
Armiger, Travis [2 ]
Jiang, Qi [1 ]
Nicholson, James [3 ]
Kratz, Joseph [3 ]
Toresco, Michael [3 ]
Lipp, Alexander [4 ]
Witte, Swjatoslaw [4 ]
Henry, Manuel [4 ]
Shultz, C. Scott [2 ]
Sirota, Eric [2 ]
Capellades, Gerard [3 ]
机构
[1] Boehringer Ingelheim GmbH & Co KG, Mat & Analyt Sci, Ridgefield, CT 06877 USA
[2] Merck & Co Inc, Proc Res & Dev, Rahway, NJ 07065 USA
[3] Rowan Univ, Dept Chem Engn, Glassboro, NJ 08028 USA
[4] Boehringer Ingelheim GmbH & Co KG, Chem Dev, D-88397 Biberach, Germany
关键词
crystallization; impurity rejection; impuritypurge; purification; impurity retention mechanism; pharmaceuticals;
D O I
10.1021/acs.oprd.3c00406
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Three industrial case studies are presented from the pharmaceutical companies Boehringer-Ingelheim and Merck & Co., Inc. (Rahway, NJ) demonstrating how solid-state miscible impurities can coprecipitate during scale-up of crystallizations resulting in significant purity challenges. This second part contribution outlines how the underlying impurity retention mechanism was identified via the Solubility-Limited Impurity Purge (SLIP) test, which allowed the project teams to establish appropriate mechanism-based root-causes. The workflow and thermodynamic model introduced in part 1 of this paper series were used to guide the teams toward finding thermodynamically robust solutions for this previously unreported impurity retention mechanism. Different approaches were employed based on the prevailing solid-state miscibility, solid form landscapes, and solvent solubilities. In the first case study, an impurity present at 6% could be purged in a single crystallization by switching the crystal form. In case studies 2 and 3, solvent switches enabled the teams to reject precipitating impurities originally present at 14% and 3.5%, respectively. The presented examples showcase how mechanistic understanding of impurity retention in crystallization can be used to arrive at thermodynamically robust solutions while saving time and resources.
引用
收藏
页码:388 / 403
页数:16
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