Department of Chemistry, Materials and Chemical Engineering, Politecnico di Milano, Milano, Italy.
YMC ChromaCon, Zürich, Switzerland.
Biotechnol J. 2024 Jul;19(7):e2400170. doi: 10.1002/biot.202400170.
Therapeutic oligonucleotides (ONs) have great potential to treat many diseases due to their ability to regulate gene expression. However, the inefficiency of standard purification techniques to separate the target sequence from molecularly similar variants is hindering development of large scale ON manufacturing at a reasonable cost. Multicolumn Countercurrent Solvent Gradient Purification (MCSGP) is a valuable process able to bypass the purity-yield tradeoff typical of single-column operations, and hence to make the ON production more sustainable from both an economic and environmental point of view. However, operating close to the optimum of MCSGP can be challenging, resulting in unstable process performance and in a drift in product quality, especially when running a continuous process for extended periods where process parameters such as temperature are prone to variation. In this work, we demonstrate how greater process robustness is introduced in the design and execution of MCSGP for the purification of a 20mer single-stranded DNA sequence through the implementation of UV-based dynamic control. With this novel approach, the cyclic steady state was reached already in the third cycle and disturbances coming from fluctuations in the feed quality, loading amount and temperature were effectively compensated allowing a stable operation close to the optimum. In response to the perturbations, the controlled process kept the standard deviation on product recovery below 3.4%, while for the non-controlled process it increased up to 27.5%.
治疗性寡核苷酸 (ONs) 具有通过调节基因表达来治疗许多疾病的巨大潜力。然而,由于标准的纯化技术无法将目标序列与分子上相似的变体分离,因此阻碍了大规模 ON 制造以合理成本的发展。多柱逆流溶剂梯度纯化 (MCSGP) 是一种有价值的工艺,能够绕过单柱操作典型的纯度-产量权衡,从而从经济和环境的角度使 ON 生产更具可持续性。然而,接近 MCSGP 的最佳操作可能具有挑战性,导致工艺性能不稳定,产品质量漂移,特别是在连续运行延长时间时,工艺参数(如温度)容易发生变化。在这项工作中,我们通过实施基于 UV 的动态控制,展示了如何在 MCSGP 的设计和执行中引入更大的过程稳健性,以纯化 20mer 单链 DNA 序列。通过这种新方法,在第三个循环中就达到了循环稳态,并且可以有效地补偿进料质量、装载量和温度波动引起的干扰,从而接近最佳状态进行稳定操作。对于受干扰的情况,受控过程将产品回收率的标准偏差保持在 3.4%以下,而对于非受控过程,标准偏差增加到 27.5%。