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Effect of spray drying and subsequent processing conditions on residual moisture content and physical/biochemical stability of protein inhalation powders.

机译:喷雾干燥和后续处理条件对蛋白质吸粉的残留水分和物理/生化稳定性的影响。

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PURPOSE: To understand the effect of spray drying and powder processing environments on the residual moisture content and aerosol performance of inhalation protein powders. Also, the long-term effect of storage conditions on the powder's physical and biochemical stability was presented. METHODS: Excipient-free as well as mannitol-formulated powders of a humanized monoclonal antibody (anti-IgE) and recombinant human deoxyribonuclease (rhDNase) were prepared using a Buchi 190 model spray dryer. Residual moisture content and moisture uptake behavior of the powder were measured using thermal gravimetric analysis and gravimetric moisture sorption isotherm, respectively. Protein aggregation, the primary degradation product observed upon storage, was determined by size-exclusion HPLC. Aerosol performance of the dry powders was evaluated after blending with lactose carriers using a multi-stage liquid impinger (MSLI). RESULTS: Spray-dried powders with a moisture level (approximately 3%) equivalent to the freeze-dried materials could only be achieved using high-temperature spray-drying conditions, which were not favorable to large-male manufacturing, or subsequent vacuum drying. These dry powders would equilibrate with the subsequent processing and storage environments regardless of the manufacturing condition. As long as the relative humidity of air during processing and storage was lower than 50%, powders maintained their aerosol performance (fine particle fraction). However, powders stored under drier conditions exhibited better long-term protein biochemical stability. CONCLUSIONS: Manufacturing, powder processing, and storage environments affected powder's residual moisture level in a reversible fashion. Therefore, the storage condition determined powder's overall stability, but residual moisture had a greater impact on protein chemical stability than on powder physical stability.
机译:目的:了解喷雾干燥和粉末处理环境对吸入蛋白粉的残留水分含量和气溶胶性能的影响。此外,还提出了贮存条件对粉末物理和生化稳定性的长期影响。方法:使用Buchi 190型喷雾干燥器制备不含赋形剂以及甘露醇配制的人源化单克隆抗体(抗IgE)和重组人脱氧核糖核酸酶(rhDNase)的粉末。分别使用热重量分析和重量水分吸收等温线测量粉末的残留水分含量和水分吸收行为。通过大小排阻HPLC确定蛋白质聚集,即在储存时观察到的主要降解产物。使用多级液体冲击器(MSLI)与乳糖载体混合后,评估干粉的气溶胶性能。结果:仅在高温喷雾干燥条件下才能达到水分含量(约3%)与冷冻干燥材料相当的喷雾干燥粉末,这不利于大批量生产或随后的真空干燥。无论制造条件如何,这些干粉都将与后续的处理和存储环境保持平衡。只要在加工和储存过程中空气的相对湿度低于50%,粉末就可以保持其气溶胶性能(细颗粒分数)。然而,在干燥条件下储存的粉末表现出更好的长期蛋白质生化稳定性。结论:制造,粉末加工和存储环境以可逆的方式影响了粉末的残留水分含量。因此,储存条件决定了粉末的整体稳定性,但是残留水分对蛋白质化学稳定性的影响大于对粉末物理稳定性的影响。

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