Author:
Doerr Frederik J. S.,Burns Lee J.,Lee Becky,Hinds Jeremy,Davis-Harrison Rebecca L.,Frank Scott A.,Florence Alastair J.
Abstract
Abstract
Purpose
Spray drying plays an important role in the pharmaceutical industry for product development of sensitive bio-pharmaceutical formulations. Process design, implementation and optimisation require in-depth knowledge of process-product interactions. Here, an integrated approach for the rapid, early-stage spray drying process development of trehalose and glucagon on lab-scale is presented.
Methods
Single droplet drying experiments were used to investigate the particle formation process. Process implementation was supported using in-line process analytical technology within a data acquisition framework recording temperature, humidity, pressure and feed rate. During process implementation, off-line product characterisation provided additional information on key product properties related to residual moisture, solid state structure, particle size/morphology and peptide fibrillation/degradation.
Results
A psychrometric process model allowed the identification of feasible operating conditions for spray drying trehalose, achieving high yields of up to 84.67%, and significantly reduced levels of residual moisture and particle agglomeration compared to product obtained during non-optimal drying. The process was further translated to produce powders of glucagon and glucagon-trehalose formulations with yields of >83.24%. Extensive peptide aggregation or degradation was not observed.
Conclusions
The presented data-driven process development concept can be applied to address future isolation problems on lab-scale and facilitate a systematic implementation of spray drying for the manufacturing of sensitive bio-pharmaceutical formulations.
Funder
Engineering and Physical Sciences Research Council
Higher Education Funding Council for England
Publisher
Springer Science and Business Media LLC
Subject
Pharmacology (medical),Organic Chemistry,Pharmaceutical Science,Pharmacology,Molecular Medicine,Biotechnology
Reference71 articles.
1. Rodney Lax, D Ph, Business development, North America, and polypeptide group. The Future of Peptide Development in the Pharmaceutical Industry. PharManufacturing The International Peptide Review, pages 10–15, 2010.
2. Kaspar AA, Reichert JM. Future directions for peptide therapeutics development. Drug Discov Today. 2013. ISSN 13596446;18(17–18):807–17. https://doi.org/10.1016/j.drudis.2013.05.011.
3. Masters, Keith. Spray drying handbook. 1985.
4. Maury M, Murphy K, Kumar S, Shi L, Lee G. Effects of process variables on the powder yield of spray-dried trehalose on a laboratory spray-dryer. Eur J Pharm Biopharm. 2005. ISSN 0939-6411;59(3):565–73. https://doi.org/10.1016/j.ejpb.2004.10.002.
5. V. Saluja, J. P. Amorij, J. C. Kapteyn, A. H. de Boer, H. W. Frijlink, and W. L J Hinrichs. A comparison between spray drying and spray freeze drying to produce an influenza subunit vaccine powder for inhalation. Journal of Controlled Release, 144(2):127–133, 2010. ISSN 01683659. https://doi.org/10.1016/j.jconrel.2010.02.025.
Cited by
7 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献