Sahni Ekneet K, Searles Jim A, Nachtigall Mark, Owen Eric, Lyne Dina
Pfizer, Inc Global Supply, 1776 Centennial Dr., McPherson, KS 67460, USA.
Pfizer, Inc Global Supply, 1776 Centennial Dr., McPherson, KS 67460, USA.
J Pharm Sci. 2023 Apr;112(4):1151-1159. doi: 10.1016/j.xphs.2022.11.007. Epub 2022 Nov 11.
Vial breakage during lyophilization reduces yield and can lead to product contamination with glass particulates, personnel interventions during manufacturing and damage to equipment. We present case studies of full-scale commercial lyophilization operations and small-scale laboratory lyophilization studies to understand and mitigate the sources of vial breakage for sterile injectable products. In the first case study, changes to the lyophilization cycle caused the breakage of 11% of the vials. Breakage rates were higher on the top than the bottom shelves and higher for vials on the edges of the shelves than for center vials. Laboratory strain gauge and process parameter ranging studies confirmed the breakage mechanism to be thermal expansion of the frozen plug early in primary drying, the temperature of which was increased by the cycle changes. We postulate that residual heat from steam sterilization coupled with edge effects drove the breakage patterns. In another case study, we reduced breakage from 3.5% to 0.4% in commercial production by changing the freezing temperature from -45°C to -25°C. Laboratory strain gauge studies confirmed reduced incidence and severity of "break-free" / "plugging-off," which occurs when the frozen plug abruptly detaches from the vial sidewalls as it is cooled well below T'. The final case study is a "breakage challenge" study in the lab using higher fill volumes and aggressive drying to challenge the strength of vials. For borosilicate vials, breakage rates were dramatically higher after washing and tunnel depyrogenation in commercial manufacturing compared to vials that were used as received. Corning Valor® vials remained unbreakable even after processing. Tin oxide external coating provided borosilicate vials significant protection against damage from vial processing. These case studies illuminate vial breakage mechanisms, show how small-scale strain gauge and breakage challenge studies can be used to nearly eliminate vial breakage during full-scale commercial lyophilization.
冻干过程中的小瓶破损会降低产量,并可能导致产品被玻璃颗粒污染,在生产过程中需要人工干预,还会损坏设备。我们展示了大规模商业冻干操作和小规模实验室冻干研究的案例,以了解并减轻无菌注射产品小瓶破损的根源。在第一个案例中,冻干周期的改变导致11%的小瓶破损。顶层小瓶的破损率高于底层,架子边缘的小瓶破损率高于中间的小瓶。实验室应变片和工艺参数范围研究证实,破损机制是在一次干燥初期冷冻塞的热膨胀,而冷冻塞的温度因周期变化而升高。我们推测,蒸汽灭菌的余热加上边缘效应导致了破损模式。在另一个案例中,我们通过将冷冻温度从-45°C改为-25°C,使商业生产中的破损率从3.5%降至0.4%。实验室应变片研究证实,“无破损”/“堵塞脱离”的发生率和严重程度降低,“无破损”/“堵塞脱离”是指冷冻塞在冷却至远低于T'时突然从小瓶侧壁脱离的情况。最后一个案例是在实验室进行的“破损挑战”研究,使用更高的灌装量和激进的干燥方式来考验小瓶的强度。对于硼硅酸盐小瓶,与直接使用的小瓶相比,商业生产中洗涤和隧道去热原处理后的破损率显著更高。即使经过处理,康宁Valor®小瓶仍未破损。氧化锡外涂层为硼硅酸盐小瓶提供了显著的保护,防止其在小瓶处理过程中受损。这些案例研究阐明了小瓶破损机制,展示了小规模应变片和破损挑战研究如何能够几乎消除大规模商业冻干过程中的小瓶破损。