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Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation

Since plasmid DNA (pDNA) is unstable in solution, lyophilisation can be used to increase product shelf life. To prevent stress on pDNA molecules during lyophilisation, cryo- and lyoprotectants have to be added to the formulation. This study assessed the effect of disaccharides on naked pDNA stabilit...

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Autores principales: Quaak, Susanne G. L., Haanen, John B. A. G., Beijnen, Jos H., Nuijen, Bastiaan
Formato: Texto
Lenguaje:English
Publicado: Springer US 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2850488/
https://www.ncbi.nlm.nih.gov/pubmed/20204715
http://dx.doi.org/10.1208/s12249-010-9391-2
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author Quaak, Susanne G. L.
Haanen, John B. A. G.
Beijnen, Jos H.
Nuijen, Bastiaan
author_facet Quaak, Susanne G. L.
Haanen, John B. A. G.
Beijnen, Jos H.
Nuijen, Bastiaan
author_sort Quaak, Susanne G. L.
collection PubMed
description Since plasmid DNA (pDNA) is unstable in solution, lyophilisation can be used to increase product shelf life. To prevent stress on pDNA molecules during lyophilisation, cryo- and lyoprotectants have to be added to the formulation. This study assessed the effect of disaccharides on naked pDNA stability after lyophilisation using accelerated stability studies. Naked pDNA was lyophilised with sucrose, trehalose, maltose or lactose in an excipient/DNA w/w ratio of 20. To one part of the vials extra residual moisture was introduced by placing the vials half opened in a 25°C/60% RH climate chamber, before placing all vials in climate chambers (25°C/60% RH and 40°C/75% RH) for stability studies. An ex vivo human skin model was used to assess the effect of disaccharides on transfection efficiency. Lyophilisation resulted in amorphous cakes for all disaccharides with a residual water content of 0.8% w/w. Storage at 40°C/75% RH resulted in decreasing supercoiled (SC) purity levels (sucrose and trehalose maintained approximately 80% SC purity), but not in physical collapse. The addition of residual moisture (values between 7.5% and 10% w/w) resulted in rapid collapse except for trehalose and decreasing SC purity for all formulations. In a separate experiment disaccharide formulation solutions show a slight but significant reduction (<3% with sucrose and maltose) in transfection efficiency when compared to pDNA dissolved in water. We demonstrate that disaccharides, like sucrose and trehalose, are effective lyoprotectants for naked pDNA.
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spelling pubmed-28504882010-04-16 Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation Quaak, Susanne G. L. Haanen, John B. A. G. Beijnen, Jos H. Nuijen, Bastiaan AAPS PharmSciTech Research Article Since plasmid DNA (pDNA) is unstable in solution, lyophilisation can be used to increase product shelf life. To prevent stress on pDNA molecules during lyophilisation, cryo- and lyoprotectants have to be added to the formulation. This study assessed the effect of disaccharides on naked pDNA stability after lyophilisation using accelerated stability studies. Naked pDNA was lyophilised with sucrose, trehalose, maltose or lactose in an excipient/DNA w/w ratio of 20. To one part of the vials extra residual moisture was introduced by placing the vials half opened in a 25°C/60% RH climate chamber, before placing all vials in climate chambers (25°C/60% RH and 40°C/75% RH) for stability studies. An ex vivo human skin model was used to assess the effect of disaccharides on transfection efficiency. Lyophilisation resulted in amorphous cakes for all disaccharides with a residual water content of 0.8% w/w. Storage at 40°C/75% RH resulted in decreasing supercoiled (SC) purity levels (sucrose and trehalose maintained approximately 80% SC purity), but not in physical collapse. The addition of residual moisture (values between 7.5% and 10% w/w) resulted in rapid collapse except for trehalose and decreasing SC purity for all formulations. In a separate experiment disaccharide formulation solutions show a slight but significant reduction (<3% with sucrose and maltose) in transfection efficiency when compared to pDNA dissolved in water. We demonstrate that disaccharides, like sucrose and trehalose, are effective lyoprotectants for naked pDNA. Springer US 2010-03-04 /pmc/articles/PMC2850488/ /pubmed/20204715 http://dx.doi.org/10.1208/s12249-010-9391-2 Text en © The Author(s) 2010 https://creativecommons.org/licenses/by-nc/4.0/This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Research Article
Quaak, Susanne G. L.
Haanen, John B. A. G.
Beijnen, Jos H.
Nuijen, Bastiaan
Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title_full Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title_fullStr Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title_full_unstemmed Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title_short Naked Plasmid DNA Formulation: Effect of Different Disaccharides on Stability after Lyophilisation
title_sort naked plasmid dna formulation: effect of different disaccharides on stability after lyophilisation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2850488/
https://www.ncbi.nlm.nih.gov/pubmed/20204715
http://dx.doi.org/10.1208/s12249-010-9391-2
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