BioProcess Technologies & Engineering, BioPharmaceuticals Development, R&D, AstraZeneca, Gaithersburg, Maryland, USA.
Biotechnol Prog. 2024 May-Jun;40(3):e3440. doi: 10.1002/btpr.3440. Epub 2024 Feb 11.
As the need for higher volumetric productivity in biomanufacturing grows, biopharmaceutical companies are increasingly investing in a perfusion cell culture process, most commonly one that uses a hollow fiber filter as the cell retention device. A current challenge with using hollow fiber filters is fouling of the membrane, which reduces product sieving and can increase transmembrane pressure (TMP) past process limitations. In this work, the impact of hollow fiber filter geometries on product sieving and hydraulic membrane resistance profiles is evaluated in a tangential flow filtration (TFF) perfusion system. The hollow fibers tested had lengths ranging from 19.8 to 41.5 cm, inner diameters (IDs) ranging from 1.0 to 2.6 mm, and pore sizes of 0.2 or 0.65 μm. The results showed that the shortest hollow fibers experienced higher product sieving while larger IDs contributed to both higher product sieving and lower hydraulic membrane resistances, illustrating the impact of filter geometry on process performance. The results also showed 0.2 μm pore size filters maintain higher product sieving, but also higher membrane resistances compared to 0.65 μm pore size filters. This study highlights the need for optimized hollow fiber filter geometries to maximize use of the membrane area, which in turn can reduce production costs and increase scalability of the perfusion process.
随着生物制品生产中对更高体积生产率的需求不断增长,生物制药公司越来越多地投资于灌注细胞培养工艺,其中最常见的工艺是使用中空纤维过滤器作为细胞保留装置。目前,使用中空纤维过滤器的一个挑战是膜污染,这会降低产品的筛析效果,并使跨膜压力 (TMP) 超过工艺限制。在这项工作中,评估了在切向流过滤 (TFF) 灌注系统中,中空纤维过滤器的几何形状对产品筛析和水力膜阻力分布的影响。测试的中空纤维的长度范围为 19.8 至 41.5 厘米,内径 (ID) 范围为 1.0 至 2.6 毫米,孔径为 0.2 或 0.65 微米。结果表明,最短的中空纤维经历了更高的产品筛析,而更大的 ID 有助于更高的产品筛析和更低的水力膜阻力,说明了过滤器几何形状对工艺性能的影响。结果还表明,0.2 微米孔径的过滤器比 0.65 微米孔径的过滤器保持更高的产品筛析,但也具有更高的膜阻力。本研究强调了需要优化中空纤维过滤器的几何形状,以最大限度地利用膜面积,从而降低生产成本并提高灌注工艺的可扩展性。