Literature DB >> 18506820

A procedure to optimize scale-up for the primary drying phase of lyophilization.

T Kramer1, D M Kremer, M J Pikal, W J Petre, E Y Shalaev, L A Gatlin.   

Abstract

This article describes a procedure to facilitate scale-up for the primary drying phase of lyophilization using a combination of empirical testing and numerical modeling. Freeze dry microscopy is used to determine the temperature at which lyophile collapse occurs. A laboratory scale freeze-dryer equipped with manometric temperature measurement is utilized to characterize the formulation-dependent mass transfer resistance of the lyophile and develop an optimized laboratory scale primary drying phase of the freeze-drying cycle. Characterization of heat transfer at both lab and pilot scales has been ascertained from data collected during a lyophilization cycle involving surrogate material. Using the empirically derived mass transfer resistance and heat transfer data, a semi-empirical computational heat and mass transfer model originally developed by Mascarenhas et al. (Mascarenhas et al., 1997, Comput Methods Appl Mech Eng 148: 105-124) is demonstrated to provide predictive primary drying data at both the laboratory and pilot scale. Excellent agreement in both the sublimation interface temperature profiles and the time for completion of primary drying is obtained between the experimental cycles and the numerical model at both the laboratory and pilot scales. Further, the computational model predicts the optimum operational settings of the pilot scale lyophilizer, thus the procedure discussed here offers the potential to both reduce the time necessary to develop commercial freeze-drying cycles by eliminating experimentation and to minimize consumption of valuable pharmacologically active materials during process development. (c) 2008 Wiley-Liss, Inc. and the American Pharmacists Association

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Year:  2009        PMID: 18506820     DOI: 10.1002/jps.21430

Source DB:  PubMed          Journal:  J Pharm Sci        ISSN: 0022-3549            Impact factor:   3.534


  9 in total

1.  Characterizing the freeze-drying behavior of model protein formulations.

Authors:  Lavinia M Lewis; Robert E Johnson; Megan E Oldroyd; Saleem S Ahmed; Liji Joseph; Ilie Saracovan; Sandipan Sinha
Journal:  AAPS PharmSciTech       Date:  2010-11-06       Impact factor: 3.246

2.  Quality by design: scale-up of freeze-drying cycles in pharmaceutical industry.

Authors:  Roberto Pisano; Davide Fissore; Antonello A Barresi; Massimo Rastelli
Journal:  AAPS PharmSciTech       Date:  2013-07-25       Impact factor: 3.246

3.  Investigation of design space for freeze-drying: use of modeling for primary drying segment of a freeze-drying cycle.

Authors:  Venkat Rao Koganti; Evgenyi Y Shalaev; Mark R Berry; Thomas Osterberg; Maickel Youssef; David N Hiebert; Frank A Kanka; Martin Nolan; Rosemary Barrett; Gioval Scalzo; Gillian Fitzpatrick; Niall Fitzgibbon; Sumit Luthra; Liling Zhang
Journal:  AAPS PharmSciTech       Date:  2011-06-28       Impact factor: 3.246

4.  Finite Element Method (FEM) Modeling of Freeze-drying: Monitoring Pharmaceutical Product Robustness During Lyophilization.

Authors:  Xiaodong Chen; Vikram Sadineni; Mita Maity; Yong Quan; Matthew Enterline; Rao V Mantri
Journal:  AAPS PharmSciTech       Date:  2015-03-20       Impact factor: 3.246

Review 5.  Recent advances in lipid nanoparticle formulations with solid matrix for oral drug delivery.

Authors:  Surajit Das; Anumita Chaudhury
Journal:  AAPS PharmSciTech       Date:  2010-12-21       Impact factor: 3.246

6.  Thermostability of biological systems: fundamentals, challenges, and quantification.

Authors:  Xiaoming He
Journal:  Open Biomed Eng J       Date:  2011-04-12

7.  Freeze-drying of plant tissue containing HBV surface antigen for the oral vaccine against hepatitis B.

Authors:  Marcin Czyż; Radosław Dembczyński; Roman Marecik; Justyna Wojas-Turek; Magdalena Milczarek; Elżbieta Pajtasz-Piasecka; Joanna Wietrzyk; Tomasz Pniewski
Journal:  Biomed Res Int       Date:  2014-10-12       Impact factor: 3.411

8.  Demonstrating Functional Equivalence of Pilot and Production Scale Freeze-Drying of BCG.

Authors:  R Ten Have; K Reubsaet; P van Herpen; G Kersten; J-P Amorij
Journal:  PLoS One       Date:  2016-03-16       Impact factor: 3.240

9.  Cycle Development in a Mini-Freeze Dryer: Evaluation of Manometric Temperature Measurement in Small-Scale Equipment.

Authors:  Tim Wenzel; Margit Gieseler; Ahmad M Abdul-Fattah; Henning Gieseler
Journal:  AAPS PharmSciTech       Date:  2021-04-26       Impact factor: 3.246

  9 in total

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