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非布司他多晶型物的单晶结构、纳米力学与整体压实行为的关联

Correlating Single Crystal Structure, Nanomechanical, and Bulk Compaction Behavior of Febuxostat Polymorphs.

作者信息

Yadav Jayprakash A, Khomane Kailas S, Modi Sameer R, Ugale Bharat, Yadav Ram Naresh, Nagaraja C M, Kumar Navin, Bansal Arvind K

机构信息

Department of Pharmaceutics, National Institute of Pharmaceutical Education and Research (NIPER) , S.A.S. Nagar - 160 062, Punjab, India.

出版信息

Mol Pharm. 2017 Mar 6;14(3):866-874. doi: 10.1021/acs.molpharmaceut.6b01075. Epub 2017 Feb 15.

Abstract

Febuxostat exhibits unprecedented solid forms with a total of 40 polymorphs and pseudopolymorphs reported. Polymorphs differ in molecular arrangement and conformation, intermolecular interactions, and various physicochemical properties, including mechanical properties. Febuxostat Form Q (FXT Q) and Form H1 (FXT H1) were investigated for crystal structure, nanomechanical parameters, and bulk deformation behavior. FXT Q showed greater compressibility, densification, and plastic deformation as compared to FXT H1 at a given compaction pressure. Lower mechanical hardness of FXT Q (0.214 GPa) as compared to FXT H1 (0.310 GPa) was found to be consistent with greater compressibility and lower mean yield pressure (38 MPa) of FXT Q. Superior compaction behavior of FXT Q was attributed to the presence of active slip systems in crystals which offered greater plastic deformation. By virtue of greater compressibility and densification, FXT Q showed higher tabletability over FXT H1. Significant correlation was found with anticipation that the preferred orientation of molecular planes into a crystal lattice translated nanomechanical parameters to a bulk compaction process. Moreover, prediction of compactibility of materials based on true density or molecular packing should be carefully evaluated, as slip-planes may cause deviation in the structure-property relationship. This study supported how molecular level crystal structure confers a bridge between particle level nanomechanical parameters and bulk level deformation behavior.

摘要

非布司他呈现出前所未有的固态形式,总共报道了40种多晶型物和假多晶型物。多晶型物在分子排列和构象、分子间相互作用以及包括机械性能在内的各种物理化学性质方面存在差异。对非布司他Q型(FXT Q)和H1型(FXT H1)进行了晶体结构、纳米力学参数和整体变形行为的研究。在给定的压制压力下,与FXT H1相比,FXT Q表现出更大的压缩性、致密化和塑性变形。发现FXT Q的机械硬度(0.214 GPa)低于FXT H1(0.310 GPa),这与FXT Q更大的压缩性和更低的平均屈服压力(38 MPa)一致。FXT Q优异的压制行为归因于晶体中存在活性滑移系统,该系统提供了更大的塑性变形。由于具有更大的压缩性和致密化,FXT Q比FXT H1表现出更高的可压性。正如预期的那样,分子平面在晶格中的择优取向将纳米力学参数转化为整体压制过程,两者之间存在显著相关性。此外,基于真密度或分子堆积对材料可压性的预测应谨慎评估,因为滑移面可能导致结构-性能关系出现偏差。本研究支持了分子水平的晶体结构如何在颗粒水平的纳米力学参数和整体水平的变形行为之间架起一座桥梁。

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