A novel architecture for achieving high drug loading in amorphous spray dried dispersion tablets
Новая архитектура для достижения высокого содержания лекарственного вещества в таблетках с аморфной дисперсией, полученной распылительной сушкой
2020-02-18
SCID: 54.1/5aend3kt
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amorphous solid dispersionserlotinibhigh drug loadingspray-dried dispersion tabletssupersaturation
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Abstract (AI)
Although Amorphous Solid Dispersions (ASDs) effectively increase bioavailability, tablet mass can be high due to the large fraction of excipients needed to stabilize the amorphous drug in the solid state, extend drug supersaturation in solution and achieve robust manufacturability. The aim of this work was to reduce tablet mass of an ASD tablet comprising a low glass transition temperature (Tg), rapidly crystallizing drug without compromising these key attributes. In this approach, erlotinib (Tg = 42 °C, Tm/Tg = 1.4 K/K) was spray dried with the high Tg polymer poly(methyl methacrylate-co-methacrylic acid) (Eudragit® L100, Evonik) (Tg = 187 °C) to facilitate high drug loading while maintaining physical stability. Hydroxypropyl methylcellulose acetate succinate (HPMCAS) (AQOAT® HF, Shin-Etsu) was granulated with the ASD to extend supersaturation in solution. For comparison, a benchmark ASD was spray dried at a lower drug loading with HPMCAS-H (Tg = 119 °C). This High Loaded Dosage Form (HLDF) approach reduced tablet mass by 40%, demonstrated similar physical stability and in vitro performance as the benchmark and exhibited excellent downstream manufacturability. Strategically combining two different polymers in a tablet to maintain physical stability and sustain supersaturation in solution can decrease tablet mass of some low Tg, rapidly crystallizing amorphous drugs.
Key Findings
1
A high-loaded dosage form was developed for erlotinib, a low-Tg, rapidly crystallizing drug, by spray drying it with high-Tg Eudragit L100.
2
Despite the higher drug loading, the formulation showed similar physical stability and in vitro performance to the benchmark.
3
Granulating the amorphous solid dispersion with HPMCAS extended drug supersaturation in solution while supporting tablet performance.
4
Strategically combining polymers enabled excellent downstream manufacturability while maintaining amorphous stability and sustained supersaturation.
5
The high-loaded dosage form reduced tablet mass by 40% compared with a lower-loading HPMCAS-based benchmark.
Research Object
High-drug-loading amorphous spray-dried dispersion tablets containing erlotinib
Research Subject
The ability of a dual-polymer tablet architecture to reduce tablet mass while maintaining amorphous physical stability, drug supersaturation, in vitro performance, and manufacturability
Publication Details
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2020-02-18
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