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首页> 外文期刊>Biotechnology Progress >Ultra Scale-Down Studies of the Effect of Shear on Cell Quality; Processing of a Human Cell Line for Cancer Vaccine Therapy
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Ultra Scale-Down Studies of the Effect of Shear on Cell Quality; Processing of a Human Cell Line for Cancer Vaccine Therapy

机译:剪切对细胞质量影响的超比例缩小研究;用于癌症疫苗治疗的人细胞系的加工

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Whole cell therapy is showing potential in the clinic for the treatment of many chronic diseases. The translation of laboratory-scale methods for cell harvesting and formulation to commercial-scale manufacturing offers major bioprocessing challenges. This is especially the case when the cell properties determine the final product effectiveness. This study is focused on developing an ultra scale-down method for assessing the impact of the hydrody-namic environment on human cells that constitute the therapeutic product. Small volumes of a prostate cancer cell line, currently being developed in late phase II clinical trials as an allogeneic whole cell vaccine therapy for prostate cancer, were exposed to hydrodynamic shear rates similar to those present in downstream process, formulation and vial filling operations. A small scale rotating disc shear device (20 mL) was used over a range of disc speeds to expose cells to maximum shear rates ranging from 90×10 to 175×10~3 s~(-1) (equivalent maximum power dissipation rates of 14×10 to 52×10~3 W kg~(-1)). These cells were subsequently analyzed for critical cell quality attributes such as the retention of membrane integrity and cell surface marker profile and density. Three cell surface markers (CD9, CD147, and HLAA-C) were studied. The cell markers exhibited different levels of susceptibility to hydrodynamic shear but in all cases this was less than or equal to the loss of membrane integrity. It is evident that the marker, or combination or markers, which might provide the required immunogenic response, will be affected by hydrodynamic shear environment during bioprocessing, if the engineering environment is not controlled to within the limits tolerated by the cell components.
机译:全细胞疗法在临床上显示出治疗许多慢性疾病的潜力。将实验室规模的细胞采集和配制方法转化为商业规模的生产带来了重大的生物处理挑战。当电池性能决定最终产品的有效性时,尤其如此。这项研究的重点是开发一种超小型化方法,用于评估水动力环境对构成治疗产品的人体细胞的影响。目前正在II期后期临床试验中开发的小体积前列腺癌细胞系,是用于前列腺癌的同种异体全细胞疫苗疗法,暴露于与下游工艺,配制和样品瓶填充操作中相似的流体动力剪切速率。在圆盘速度范围内使用小型旋转圆盘剪切装置(20 mL)使细胞暴露于90×10至175×10〜3 s〜(-1)的最大剪切速率(等效于14×10至52×10〜3 W kg〜(-1))。随后分析这些细胞的关键细胞质量属性,例如膜完整性的保留以及细胞表面标志物的分布和密度。研究了三种细胞表面标记(CD9,CD147和HLAA-C)。细胞标记物对流体动力剪切的敏感性不同,但是在所有情况下都小于或等于膜完整性的损失。显然,如果工程环境没有控制在细胞组分所能承受的范围内,则可能提供所需免疫原性应答的标记物或组合物或标记物将在生物加工过程中受到流体动力剪切环境的影响。

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