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螺杆轮廓和加工条件对双螺杆熔融造粒过程中美沙酮物理转化和化学降解的影响。

Effect of screw profile and processing conditions on physical transformation and chemical degradation of gabapentin during twin-screw melt granulation.

机构信息

Division of Molecular Pharmaceutics and Drug Delivery, College of Pharmacy, The University of Texas at Austin, 2409 University Avenue, A1920, Austin, TX 78712, USA.

Department of Pharmaceutics, University of Minnesota, 308 SE Harvard St, Minneapolis, MN 55455, USA.

出版信息

Eur J Pharm Sci. 2019 Apr 1;131:243-253. doi: 10.1016/j.ejps.2019.02.024. Epub 2019 Feb 21.

Abstract

Twin-screw melt granulation (TSMG) was applied to process a powder blend consisting of 80% gabapentin (GABA) and 20% hydroxypropyl cellulose. The effect of screw profile and processing conditions on the process-induced transformation and chemical degradation of gabapentin was studied. When a neutral kneading block was used, gabapentin underwent polymorphic transformation. A forward kneading block in combination with processing under torque conditions was required to minimize chemical degradation and to inhibit polymorphic transformation of gabapentin. Both the size of the extruded granules and gabapentin degradant level correlated positively with the specific rate, the ratio between feed rate and screw speed. At higher specific rate, the barrel was filled to a greater extent. The material packing and compressive forces were enhanced, as proven by the increased rupturing of CAMES® sensor beads and GABA crystal size reduction. This resulted in more interaction between the powder particles and facilitated granule growth. Simultaneously, this also resulted in higher degradant level. To attain adequate tabletability, the specific rate must reach a threshold value. The development of an optimum TSMG process requires balancing processing parameters based on the physical and chemical stability of GABA as well as its tabletability.

摘要

双螺杆熔融造粒(TSMG)被应用于处理一种由 80%的加巴喷丁(GABA)和 20%羟丙纤维素组成的粉末混合物。研究了螺杆轮廓和加工条件对加工过程中 GABA 的形态转变和化学降解的影响。当使用中性捏合块时,GABA 会发生多晶型转变。需要使用前向捏合块并在扭矩条件下进行加工,以最大限度地减少化学降解并抑制 GABA 的多晶型转变。挤出颗粒的大小和 GABA 降解物水平与比速率(进料速率与螺杆速度的比值)呈正相关。在较高的比速率下,机筒的填充程度更大。通过增加 CAMES®传感器珠的破裂和 GABA 晶体尺寸减小,证明了物料的填充和压缩力得到增强。这导致粉末颗粒之间的相互作用更多,促进了颗粒的生长。同时,这也导致了更高的降解物水平。为了达到足够的可压性,比速率必须达到一个阈值。优化 TSMG 工艺的开发需要根据 GABA 的物理和化学稳定性以及其可压性来平衡加工参数。

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