COSMOPharm:COSMO-SAC:药用无定形固体分散体的药物-聚合物兼容性。

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2024-09-02 Epub Date: 2024-07-30 DOI:10.1021/acs.molpharmaceut.4c00342
Ivan Antolović, Jadran Vrabec, Martin Klajmon
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引用次数: 0

摘要

应用量子力学辅助的 COSMO-SAC 活性系数模型,对药物与聚合物的热力学相容性进行了系统研究和预测。药物与聚合物的相容性是合理选择最佳聚合物载体用于提高药物生物利用度的药用无定形固体分散体(ASD)的一个关键方面。根据 COSMO-SAC 预测的活性系数,利用标准热力学平衡关系计算出的溶解度和混溶性,对药物与聚合物的相容性进行了评估。正如 COSMO-SAC 所固有的,我们的方法仅依赖于量子力学推导出的所考虑分子物种的 σ 曲线,而不涉及实验数据的参数拟合。所有使用的 σ 曲线都是在这项工作中确定的,其中聚合物的 σ 曲线是通过复制其中心单体单元的特性,从其较短的低聚物中推导出来的。从数量上看,与实验数据相比,COSMO-SAC 在重量分数药物溶解度预测方面的总体平均绝对偏差为 13%。从质量上看,COSMO-SAC 能根据不同聚合物类型与药物的相容性对其进行正确分类,并对无定形-无定形相分离进行了有意义的估算。此外,我们还分析了 COSMO-SAC 的 ASD 结果对不同聚合物模型配置和 σ 曲线的敏感性。一般来说,自由体积和分散项对预测结果的影响有限,而用于生成聚合物σ轮廓的低聚物结构似乎更为重要,特别是在强相互作用聚合物的情况下。本文对这些观察结果进行了解释。事实证明,COSMO-SAC 是一种在 ASD 中进行相容性预测和聚合物筛选的高效方法,特别是在性能成本比方面,因为它只依赖于对所考虑的分子物种进行第一原理计算。COSMO-SAC 和基于 Python- 的工具 COSMOPharm 都是开源的,用于预测原料药与聚合物的热力学相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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COSMOPharm: Drug-Polymer Compatibility of Pharmaceutical Amorphous Solid Dispersions from COSMO-SAC.

The quantum mechanics-aided COSMO-SAC activity coefficient model is applied and systematically examined for predicting the thermodynamic compatibility of drugs and polymers. The drug-polymer compatibility is a key aspect in the rational selection of optimal polymeric carriers for pharmaceutical amorphous solid dispersions (ASD) that enhance drug bioavailability. The drug-polymer compatibility is evaluated in terms of both solubility and miscibility, calculated using standard thermodynamic equilibrium relations based on the activity coefficients predicted by COSMO-SAC. As inherent to COSMO-SAC, our approach relies only on quantum-mechanically derived σ-profiles of the considered molecular species and involves no parameter fitting to experimental data. All σ-profiles used were determined in this work, with those of the polymers being derived from their shorter oligomers by replicating the properties of their central monomer unit(s). Quantitatively, COSMO-SAC achieved an overall average absolute deviation of 13% in weight fraction drug solubility predictions compared to experimental data. Qualitatively, COSMO-SAC correctly categorized different polymer types in terms of their compatibility with drugs and provided meaningful estimations of the amorphous-amorphous phase separation. Furthermore, we analyzed the sensitivity of the COSMO-SAC results for ASD to different model configurations and σ-profiles of polymers. In general, while the free volume and dispersion terms exerted a limited effect on predictions, the structures of oligomers used to produce σ-profiles of polymers appeared to be more important, especially in the case of strongly interacting polymers. Explanations for these observations are provided. COSMO-SAC proved to be an efficient method for compatibility prediction and polymer screening in ASD, particularly in terms of its performance-cost ratio, as it relies only on first-principles calculations for the considered molecular species. The open-source nature of both COSMO-SAC and the Python-based tool COSMOPharm, developed in this work for predicting the API-polymer thermodynamic compatibility, invites interested readers to explore and utilize this method for further research or assistance in the design of pharmaceutical formulations.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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