Javascript must be enabled to continue!
Mechanistic Modeling of Continuous Lyophilization for Biopharmaceutical Manufacturing
View through CrossRef
Abstract
Lyophilization (aka freeze drying) is a typical process in (bio)pharmaceutical manufacturing used for improving the stability of various drug products, including its recent applications to mRNA vaccines. While extensive efforts are dedicated to shifting the (bio)pharmaceutical industry toward continuous manufacturing, the majority of industrial‐scale lyophilization is still being operated in batch mode. This article presents the first mechanistic model for a complete continuous lyophilization process, which comprehensively incorporates and describes key transport phenomena in all three steps of lyophilization, namely freezing, primary drying, and secondary drying. The proposed model considers the state‐of‐the‐art lyophilization technology, in which vials are suspended and move continuously through the process. The validated model can accurately predict the evolution of critical process parameters, including the product temperature, ice/water fraction, sublimation front position, and concentration of bound water, for the entire process. Several applications related to model‐based process design and optimization of continuous lyophilization are also demonstrated. The final model is made available as an open‐source software package that can be leveraged for guiding the design and development of future continuous lyophilization processes.
Title: Mechanistic Modeling of Continuous Lyophilization for Biopharmaceutical Manufacturing
Description:
Abstract
Lyophilization (aka freeze drying) is a typical process in (bio)pharmaceutical manufacturing used for improving the stability of various drug products, including its recent applications to mRNA vaccines.
While extensive efforts are dedicated to shifting the (bio)pharmaceutical industry toward continuous manufacturing, the majority of industrial‐scale lyophilization is still being operated in batch mode.
This article presents the first mechanistic model for a complete continuous lyophilization process, which comprehensively incorporates and describes key transport phenomena in all three steps of lyophilization, namely freezing, primary drying, and secondary drying.
The proposed model considers the state‐of‐the‐art lyophilization technology, in which vials are suspended and move continuously through the process.
The validated model can accurately predict the evolution of critical process parameters, including the product temperature, ice/water fraction, sublimation front position, and concentration of bound water, for the entire process.
Several applications related to model‐based process design and optimization of continuous lyophilization are also demonstrated.
The final model is made available as an open‐source software package that can be leveraged for guiding the design and development of future continuous lyophilization processes.
Related Results
Lyophilization process optimization and molecular dynamics simulation of mRNA-LNPs for SARS-CoV-2 vaccine
Lyophilization process optimization and molecular dynamics simulation of mRNA-LNPs for SARS-CoV-2 vaccine
AbstractSome studies have shown that lyophilization significantly improves the stability of mRNA-LNPs and enables long-term storage at 2–8 °C. However, there is little research on ...
In-Depth Analysis of “Dusting” Defects in Lyophilized Biological Drug Products
In-Depth Analysis of “Dusting” Defects in Lyophilized Biological Drug Products
Lyophilization is a vital technique utilized in the stabilization of active pharmaceutical ingredients in biological drug products. During the manufacturing of lyophilized biopharm...
Development of a Lyophilization Process for Campylobacter Bacteriophage Storage and Transport
Development of a Lyophilization Process for Campylobacter Bacteriophage Storage and Transport
Bacteriophages are a sustainable alternative to control pathogenic bacteria in the post-antibiotic era. Despite promising reports, there are still obstacles to phage use, notably t...
Nanomaterial-Assisted Stabilization of Lipid Nanoparticles During Lyophilization: Spectroscopic and Microscopic Evidence
Nanomaterial-Assisted Stabilization of Lipid Nanoparticles During Lyophilization: Spectroscopic and Microscopic Evidence
The storage durability of nucleic acid treatments based on lipid nanoparticles (LNPs) can be enhanced by lyophilization; however, freeze-drying often causes excipient crystallizati...
Unveiling the Environmental and Economic Implications of Additive Manufacturing on Inbound Transportation
Unveiling the Environmental and Economic Implications of Additive Manufacturing on Inbound Transportation
This studyaims to investigate the impact of additive manufacturing (AM) on the sustainability of inbound transportation. By combining insights from existing litera...
Smart Manufacturing Application in Precision Manufacturing
Smart Manufacturing Application in Precision Manufacturing
Industry 4.0 presents an opportunity to gain a competitive advantage through productivity, flexibility, and speed. It also empowers the manufacturing sector to drive the sustainabi...
Concurrent Engineering and the Virtual Factory: Developing Products With Supply Chains
Concurrent Engineering and the Virtual Factory: Developing Products With Supply Chains
Abstract
Several recent developments have led to significant changes in the way new products are developed. The emphasis on core competency has resulted in having ma...
Biopharmaceutical Manufacturing: Processes and Challenges
Biopharmaceutical Manufacturing: Processes and Challenges
Biopharmaceuticals have emerged as a cornerstone of modern medicine, providing therapeutic solutions for previously untreatable diseases including cancer, autoimmune disorders, and...

