Advanced Centre for Biochemical Engineering, University College London, London, United Kingdom.
Manufacturing Science & Technology, GSK, King of Prussia, Pennsylvania, USA; email:
Annu Rev Chem Biomol Eng. 2022 Jun 10;13:73-97. doi: 10.1146/annurev-chembioeng-092220-030223.
Single-use technologies have transformed conventional biopharmaceutical manufacturing, and their adoption is increasing rapidly for emerging applications like antibody-drug conjugates and cell and gene therapy products. These disruptive technologies have also had a significant impact during the coronavirus disease 2019 pandemic, helping to advance process development to enable the manufacturing of new monoclonal antibody therapies and vaccines. Single-use systems provide closed plug-and-play solutions and enable process intensification and continuous processing. Several challenges remain, providing opportunities to advance single-use sensors and their integration with single-use systems, to develop novel plastic materials, and to standardize design for interchangeability. Because the industry is changing rapidly, a holistic analysis of the current single-use technologies is required, with a summary of the latest advancements in materials science and the implementation of these technologies in end-to-end bioprocesses.
一次性技术已经改变了传统的生物制药制造,并且它们在新兴应用领域(如抗体药物偶联物和细胞与基因治疗产品)的采用率正在迅速提高。这些颠覆性技术在 2019 年冠状病毒病大流行期间也产生了重大影响,有助于推进工艺开发,从而能够制造新的单克隆抗体疗法和疫苗。一次性系统提供封闭的即插即用解决方案,并能够实现工艺强化和连续处理。仍存在一些挑战,为推进一次性传感器及其与一次性系统的集成、开发新型塑料材料以及标准化设计以实现可互换性提供了机会。由于行业变化迅速,需要对当前的一次性技术进行全面分析,总结材料科学的最新进展,并将这些技术应用于端到端的生物工艺中。