应用双螺杆挤压技术对各种药物的多晶体、盐和无定形相进行定标

IF 3.5 3区 化学 Q2 CHEMISTRY, APPLIED
Henry Morrison*, Peter Fung, Elizabeth Horstman, Olga Lapina, Thoeun Khuth, Diane S. Lye, Christopher S. Regens, Dustin Bringley and Jennifer Alleva, 
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引用次数: 0

摘要

本文介绍了三个案例研究,其中双螺杆挤出机被用作一种工艺化学工具,以支持各种药物项目的开发。通过这些研究发现,双螺杆挤出(TSE)是一种多功能工艺,可支持一系列应用,包括形式筛选、通过绿色化学生成盐,以及大规模分离活性药物成分(API)的无定形形式。案例研究 I:1 是一种原料药,在这种原料药中发现了几种未溶解的多晶体,需要对这些物相进行研究,以确定室温下的稳定形态。为此,利用 TSE 将机械化学应用于其中几种多晶型的放大。然后进行溶解度测量,绘制出它们的相对稳定性图,以便设计结晶过程,确保多形态控制。案例研究二:2 是一种半水合马来酸盐的原料药,与传统结晶相比,TSE 应用于 2 的游离基和马来酸的粉末混合物,以高效、可扩展和环保的工艺生成盐。案例研究三:TSE 作为一种支持无定形药物产品制造的传统工艺,在冻干或喷雾干燥等传统工艺不可行的情况下,作为一种使用熔体淬火工艺大规模(650 克)生成 API 3 无定形材料的新方法,对其进行了研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Application of Twin Screw Extrusion to Scale Polymorphs, a Salt, and the Amorphous Phase for Various Drug Substances

Application of Twin Screw Extrusion to Scale Polymorphs, a Salt, and the Amorphous Phase for Various Drug Substances

Application of Twin Screw Extrusion to Scale Polymorphs, a Salt, and the Amorphous Phase for Various Drug Substances

Presented are three case studies in which twin screw extruders were utilized as a process chemistry tool to support the development of various drug substance programs. Through these investigations, twin screw extrusion (TSE) was found to be a versatile process to support an array of applications, including form screening, salt generation via green chemistry, and the isolation of the amorphous form for an active pharmaceutical ingredient (API) on a large scale. Case study I: 1 is an API where several unsolvated polymorphs were discovered and investigations of these phases were required to identify the stable form at room temperature. To support this, TSE was utilized to apply mechanochemistry for the scale-up of several of these polymorphs. Solubility measurements were then conducted to map their relative stabilities so that a crystallization could be designed to ensure polymorphic control. Case study II: 2 is an API that is a hemihydrated maleate salt, and TSE was applied on a powder blend of the freebase of 2 and maleic acid to generate the salt in an efficient, scalable, and environmentally friendly process compared to a traditional crystallization. Case study III: as opposed to its more traditional utility as a process to support amorphous drug product manufacturing, TSE was investigated as a novel way to generate an amorphous material for API 3 on a large scale (650 g) using a melt quenching process when more traditional routes like lyophilization or spray-drying methods were impractical.

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来源期刊
CiteScore
6.90
自引率
14.70%
发文量
251
审稿时长
2 months
期刊介绍: The journal Organic Process Research & Development serves as a communication tool between industrial chemists and chemists working in universities and research institutes. As such, it reports original work from the broad field of industrial process chemistry but also presents academic results that are relevant, or potentially relevant, to industrial applications. Process chemistry is the science that enables the safe, environmentally benign and ultimately economical manufacturing of organic compounds that are required in larger amounts to help address the needs of society. Consequently, the Journal encompasses every aspect of organic chemistry, including all aspects of catalysis, synthetic methodology development and synthetic strategy exploration, but also includes aspects from analytical and solid-state chemistry and chemical engineering, such as work-up tools,process safety, or flow-chemistry. The goal of development and optimization of chemical reactions and processes is their transfer to a larger scale; original work describing such studies and the actual implementation on scale is highly relevant to the journal. However, studies on new developments from either industry, research institutes or academia that have not yet been demonstrated on scale, but where an industrial utility can be expected and where the study has addressed important prerequisites for a scale-up and has given confidence into the reliability and practicality of the chemistry, also serve the mission of OPR&D as a communication tool between the different contributors to the field.
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