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The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation

PURPOSE: To investigate insulin fibrillation under accelerated stress conditions in the presence of a novel excipient, the molecular chaperone α-crystallin, in comparison with common excipients. METHODS: To induce fibrillation, recombinant human insulin (0.58 mg ml(−1)) formulations without excipien...

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Autores principales: Rasmussen, Tue, Tantipolphan, Ruedeeporn, van de Weert, Marco, Jiskoot, Wim
Formato: Texto
Lenguaje:English
Publicado: Springer US 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2883933/
https://www.ncbi.nlm.nih.gov/pubmed/20333453
http://dx.doi.org/10.1007/s11095-010-0116-8
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author Rasmussen, Tue
Tantipolphan, Ruedeeporn
van de Weert, Marco
Jiskoot, Wim
author_facet Rasmussen, Tue
Tantipolphan, Ruedeeporn
van de Weert, Marco
Jiskoot, Wim
author_sort Rasmussen, Tue
collection PubMed
description PURPOSE: To investigate insulin fibrillation under accelerated stress conditions in the presence of a novel excipient, the molecular chaperone α-crystallin, in comparison with common excipients. METHODS: To induce fibrillation, recombinant human insulin (0.58 mg ml(−1)) formulations without excipient or with bovine α-crystallin (0.01–0.2 mg ml(−1)), human serum albumin (1–5 mg ml(−1)), sucrose (10–100 mg ml(−1)) or polysorbate 80 (0.075–0.3 mg ml(−1)) were subjected to stirring stress in a fluorescence well plate reader and formulation vials. Protein fibrillation was monitored by thioflavin T. The formulations were further characterized by size-exclusion chromatography, light obscuration, UV/Vis and circular dichroism spectroscopy. RESULTS: In both methods, insulin formed thioflavin T-binding species, most likely fibrils. Addition of α-crystallin in the well plate assay greatly improved insulin’s resistance to fibrillation, measured as a 6-fold increase in fibrillation lag time for the lowest and 26-fold for the highest concentration used, whereas all other excipients showed only a marginal increase in lag time. The stabilizing effect of α-crystallin was shown by all characterization techniques used. CONCLUSIONS: The effect of α-crystallin on insulin’s physical stability outperforms that of commonly used excipients. α-Crystallin is proposed to bind specifically to pre-fibrillation species, thereby inhibiting fibrillation. This makes α-crystallin an interesting excipient for proteins with propensity to fibrillate.
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spelling pubmed-28839332010-06-21 The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation Rasmussen, Tue Tantipolphan, Ruedeeporn van de Weert, Marco Jiskoot, Wim Pharm Res Research Paper PURPOSE: To investigate insulin fibrillation under accelerated stress conditions in the presence of a novel excipient, the molecular chaperone α-crystallin, in comparison with common excipients. METHODS: To induce fibrillation, recombinant human insulin (0.58 mg ml(−1)) formulations without excipient or with bovine α-crystallin (0.01–0.2 mg ml(−1)), human serum albumin (1–5 mg ml(−1)), sucrose (10–100 mg ml(−1)) or polysorbate 80 (0.075–0.3 mg ml(−1)) were subjected to stirring stress in a fluorescence well plate reader and formulation vials. Protein fibrillation was monitored by thioflavin T. The formulations were further characterized by size-exclusion chromatography, light obscuration, UV/Vis and circular dichroism spectroscopy. RESULTS: In both methods, insulin formed thioflavin T-binding species, most likely fibrils. Addition of α-crystallin in the well plate assay greatly improved insulin’s resistance to fibrillation, measured as a 6-fold increase in fibrillation lag time for the lowest and 26-fold for the highest concentration used, whereas all other excipients showed only a marginal increase in lag time. The stabilizing effect of α-crystallin was shown by all characterization techniques used. CONCLUSIONS: The effect of α-crystallin on insulin’s physical stability outperforms that of commonly used excipients. α-Crystallin is proposed to bind specifically to pre-fibrillation species, thereby inhibiting fibrillation. This makes α-crystallin an interesting excipient for proteins with propensity to fibrillate. Springer US 2010-03-24 2010 /pmc/articles/PMC2883933/ /pubmed/20333453 http://dx.doi.org/10.1007/s11095-010-0116-8 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 Paper
Rasmussen, Tue
Tantipolphan, Ruedeeporn
van de Weert, Marco
Jiskoot, Wim
The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title_full The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title_fullStr The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title_full_unstemmed The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title_short The Molecular Chaperone α-Crystallin as an Excipient in an Insulin Formulation
title_sort molecular chaperone α-crystallin as an excipient in an insulin formulation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2883933/
https://www.ncbi.nlm.nih.gov/pubmed/20333453
http://dx.doi.org/10.1007/s11095-010-0116-8
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