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Perfusion cultures require optimum respiratory ATP supply to maximize cell-specific and volumetric productivities

机译:灌注培养物需要最佳的呼吸ATP供应,以最大化细胞特异性和体积的生产率

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摘要

Perfusion processes are an emerging alternative to common fed-batch processes in the growing biopharmaceutical industry. However, the challenge of maintaining high cell-specific productivities remains. In this study, glucose limitation was applied to two perfusion steady states and compared with a third steady state without any detectable limitation. The metabolic phenotype was enhanced under glucose limitation with a decrease of 30% in glucose uptake and 75% in lactate formation. Cell-specific productivities were substantially improved by 50%. Remarkably, the productivities showed a strong correlation to respiratory adenosine triphosphate (ATP) supply. As less reduced nicotinamide adenine dinucleotide (NADH) remained in the cytosol, the ATP generation from oxidative phosphorylation was increased by almost 30%. Consequently, the efficiency of carbon metabolism and the resulting respiratory ATP supply was crucial for maintaining the highly productive cellular state. This study highlights that glucose limitation can be used for process intensification in perfusion cultures as ATP generation via respiration is significantly increased, leading to elevated productivities.
机译:灌注过程是生长生物制药工业中共同的喂养批处理过程的新出现替代方案。然而,仍然存在维持高细胞特异性产品的挑战。在本研究中,葡萄糖限制应用于两个灌注稳定状态,并与第三稳态进行比较而没有任何可检测的限制。在葡萄糖限制下提高代谢表型,在葡萄糖摄取的降低30%,乳酸盐形成为75%。细胞特异性生产率基本上提高了50%。值得注意的是,产品性与三磷酸(ATP)供应的呼吸腺苷强烈相关。由于少量减少的烟酰胺腺嘌呤二核苷酸(NADH)残留在胞质溶胶中,从氧化磷酸化的ATP产生近30%。因此,碳代谢的效率和所得呼吸道ATP供应对于维持高效细胞状态至关重要。该研究突出显示葡萄糖限制可用于灌注培养物中的过程强化,因为通过呼吸的ATP产生显着增加,导致生产力升高。

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