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Calculation of drug-polymer mixing enthalpy as a new screening method of precipitation inhibitors for supersaturating pharmaceutical formulations

机译:用于超饱和药物制剂的沉淀抑制剂新筛选方法的药物 - 聚合物混合焓

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Supersaturating formulations are widely used to improve the oral bioavailability of poorly soluble drugs. However, supersaturated solutions are thermodynamically unstable and such formulations often must include a precipitation inhibitor (PI) to sustain the increased concentrations to ensure that sufficient absorption will take place from the gastrointestinal tract. Recent advances in understanding the importance of drug-polymer interaction for successful precipitation inhibition have been encouraging. However, there still exists a gap in how this newfound understanding can be applied to improve the efficiency of PI screening and selection, which is still largely carried out with trial and error-based approaches. The aim of this study was to demonstrate how drug polymer mixing enthalpy, calculated with the Conductor like Screening Model for Real Solvents (COSMO-RS), can be used as a parameter to select the most efficient precipitation inhibitors, and thus realize the most successful supersaturating formulations. This approach was tested for three different Biopharmaceutical Classification System (BCS) II compounds: dipyridamole, fenofibrate and glibenclamide, formulated with the supersaturating formulation, mesoporous silica. For all three compounds, precipitation was evident in mesoporous silica formulations without a precipitation inhibitor. Of the nine precipitation inhibitors studied, there was a strong positive correlation between the drug-polymer mixing enthalpy and the overall formulation performance, as measured by the area under the concentration-time curve in in vitro dissolution experiments. The data suggest that a rank-order based approach using calculated drug-polymer mixing enthalpy can be reliably used to select precipitation inhibitors for a more focused screening. Such an approach improves efficiency of precipitation inhibitor selection, whilst also improving the likelihood that the most optimal formulation will be realized.
机译:超饱和配方广泛用于改善可溶性药物差的口服生物利用度。然而,过饱和溶液是热力学上不稳定的,并且这种制剂通常必须包括沉淀抑制剂(PI)以维持增加的浓度,以确保从胃肠道发生足够的吸收。了解理解药物 - 聚合物相互作用对成功降水抑制的重要性的进步一直令人鼓舞。然而,仍然存在如何应用这种新发现的理解来提高PI筛选和选择效率的差距,这仍然很大程度上与试验和基于误差的方法进行。本研究的目的是展示用筛选模型(Cosmo-Rs)的导体计算的药物聚合物混合焓如何用作选择最有效的降水抑制剂的参数,从而实现最成功的过饱和配方。该方法对三种不同的生物制药分类系统(BCS)II化合物进行测试:用过饱和制剂配制的二嘧达铝,芬橡胶和Glibenclamide,中孔二氧化硅配制。对于所有三种化合物,在没有沉淀抑制剂的介孔二氧化硅制剂中,沉淀明显。在研究的九个沉淀抑制剂中,通过在体外溶解实验中的浓度 - 时间曲线下由该区域测量的药物 - 聚合物混合焓和整体配方性能之间存在强烈的正相关性。数据表明,使用计算的药物聚合物混合焓的基于秩序的方法可以可靠地用于选择更聚焦筛选的沉淀抑制剂。这种方法提高了降水抑制剂选择的效率,同时还提高了最佳制剂的可能性。

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