Zmeškalová Eliška, Havlůjová Tereza, Babor Martin, Tkadlecová Marcela, Havlíček Jaroslav, Pekárek Tomáš, Tomczak Szymon, Ridvan Luděk, Šoóš Miroslav
Department of Chemical Engineering, University of Chemistry and Technology in Prague, Technická 3, 16628 Prague 6, Czechia.
Faculty of Science, Jan Evangelista Purkyně University in Ústí nad Labem, Pasteurova 3632/15, 400 96 Ústí nad Labem, Czechia.
IUCrJ. 2025 Sep 1;12(Pt 5):595-609. doi: 10.1107/S2052252525006785.
This study investigates venetoclax solvates and their nonsolvated forms through desolvation. Seven solvates were prepared and their structures solved from single-crystal X-ray diffraction data. Among these, two are cavity solvates while the remaining five are channel solvates, with three being isomorphous. Desolvation experiments led to two solvent-free crystalline polymorphs of venetoclax, forms A and B. Notably, the acetone solvate remained stable and did not convert to a nonsolvated form. Form B has a higher melting point and a faster intrinsic dissolution rate than form A. Advanced computational tools, including Solvate Analyser and CSD-Particle, provided insights into crystal surface properties and desolvation behaviour. Properties such as lattice energy, molecular interaction energy, attachment energy, surface rugosity and solvent arrangement within the crystal and on the surface were linked to solvate stability and subsequent transformation upon desolvation. A combination of FTIR, and C and N solid-state NMR spectroscopies showed that both short- and long-range molecular interactions and arrangements of venetoclax molecules in the desolvated forms closely resembled those in the parent solvates.
本研究通过去溶剂化研究了维奈克拉溶剂化物及其非溶剂化形式。制备了七种溶剂化物,并根据单晶X射线衍射数据解析了它们的结构。其中,两种是空腔溶剂化物,其余五种是通道溶剂化物,其中三种是同构的。去溶剂化实验得到了维奈克拉的两种无溶剂结晶多晶型物,A晶型和B晶型。值得注意的是,丙酮溶剂化物保持稳定,未转化为非溶剂化形式。B晶型的熔点高于A晶型,固有溶解速率也比A晶型快。包括溶剂化物分析仪和CSD-粒子在内的先进计算工具,为晶体表面性质和去溶剂化行为提供了深入了解。诸如晶格能、分子相互作用能、附着能、表面粗糙度以及晶体内部和表面的溶剂排列等性质,与溶剂化物稳定性以及去溶剂化后的后续转变有关。傅里叶变换红外光谱(FTIR)以及碳和氮固体核磁共振光谱的结合表明,去溶剂化形式的维奈克拉分子的短程和长程分子相互作用及排列与母体溶剂化物中的非常相似。