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At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification

At‐line static light scattering and fluorescence monitoring allows direct in‐process tracking of fluorescent virus‐like particles. We have demonstrated this by coupling at‐line multi‐angle light scattering and fluorescence detectors to the downstream processing of enveloped virus‐like particles. Sin...

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Autores principales: Pereira Aguilar, Patricia, González‐Domínguez, Irene, Schneider, Tobias Amadeus, Gòdia, Francesc, Cervera, Laura, Jungbauer, Alois
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771681/
https://www.ncbi.nlm.nih.gov/pubmed/31169979
http://dx.doi.org/10.1002/jssc.201900441
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author Pereira Aguilar, Patricia
González‐Domínguez, Irene
Schneider, Tobias Amadeus
Gòdia, Francesc
Cervera, Laura
Jungbauer, Alois
author_facet Pereira Aguilar, Patricia
González‐Domínguez, Irene
Schneider, Tobias Amadeus
Gòdia, Francesc
Cervera, Laura
Jungbauer, Alois
author_sort Pereira Aguilar, Patricia
collection PubMed
description At‐line static light scattering and fluorescence monitoring allows direct in‐process tracking of fluorescent virus‐like particles. We have demonstrated this by coupling at‐line multi‐angle light scattering and fluorescence detectors to the downstream processing of enveloped virus‐like particles. Since light scattering intensity is directly proportional to particle concentration, our strategy allowed a swift identification of product containing fractions and rapid process development. Virus‐like particles containing the Human Immunodeficiency Virus‐1 Gag protein fused to the Green Fluorescence protein were produced in Human Embryonic Kidney 293 cells by transient transfection. A single‐column anion‐exchange chromatography method was used for direct capture and purification. The majority of host‐cell protein impurities passed through the column without binding. Virus‐like particles bound to the column were eluted by linear or step salt gradients. Particles recovered in the step gradient purification were characterized by nanoparticle tracking analysis, size exclusion chromatography coupled to multi‐angle light scattering and fluorescence detectors and transmission electron microscopy. A total recovery of 66% for the fluorescent particles was obtained with a 50% yield in the main product peak. Virus‐like particles were concentrated 17‐fold to final a concentration of 4.45 × 10(10) particles/mL. Simple buffers and operation make this process suitable for large scale purposes.
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spelling pubmed-67716812019-10-07 At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification Pereira Aguilar, Patricia González‐Domínguez, Irene Schneider, Tobias Amadeus Gòdia, Francesc Cervera, Laura Jungbauer, Alois J Sep Sci Liquid Chromatography At‐line static light scattering and fluorescence monitoring allows direct in‐process tracking of fluorescent virus‐like particles. We have demonstrated this by coupling at‐line multi‐angle light scattering and fluorescence detectors to the downstream processing of enveloped virus‐like particles. Since light scattering intensity is directly proportional to particle concentration, our strategy allowed a swift identification of product containing fractions and rapid process development. Virus‐like particles containing the Human Immunodeficiency Virus‐1 Gag protein fused to the Green Fluorescence protein were produced in Human Embryonic Kidney 293 cells by transient transfection. A single‐column anion‐exchange chromatography method was used for direct capture and purification. The majority of host‐cell protein impurities passed through the column without binding. Virus‐like particles bound to the column were eluted by linear or step salt gradients. Particles recovered in the step gradient purification were characterized by nanoparticle tracking analysis, size exclusion chromatography coupled to multi‐angle light scattering and fluorescence detectors and transmission electron microscopy. A total recovery of 66% for the fluorescent particles was obtained with a 50% yield in the main product peak. Virus‐like particles were concentrated 17‐fold to final a concentration of 4.45 × 10(10) particles/mL. Simple buffers and operation make this process suitable for large scale purposes. John Wiley and Sons Inc. 2019-06-19 2019-08 /pmc/articles/PMC6771681/ /pubmed/31169979 http://dx.doi.org/10.1002/jssc.201900441 Text en © 2019 The Authors. Journal of Separation Science published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Liquid Chromatography
Pereira Aguilar, Patricia
González‐Domínguez, Irene
Schneider, Tobias Amadeus
Gòdia, Francesc
Cervera, Laura
Jungbauer, Alois
At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title_full At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title_fullStr At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title_full_unstemmed At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title_short At‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
title_sort at‐line multi‐angle light scattering detector for faster process development in enveloped virus‐like particle purification
topic Liquid Chromatography
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771681/
https://www.ncbi.nlm.nih.gov/pubmed/31169979
http://dx.doi.org/10.1002/jssc.201900441
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