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Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin

Transferrin is an attractive candidate for drug delivery due to its ability to cross the blood brain barrier. However, in order to be able to use it for therapeutic purposes, it is important to investigate how its stability depends on different formulation conditions. Combining high-throughput therm...

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Autores principales: Kulakova, Alina, Indrakumar, Sowmya, Sønderby, Pernille, Gentiluomo, Lorenzo, Streicher, Werner, Roessner, Dierk, Frieß, Wolfgang, Peters, Günther H.J., Harris, Pernille
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7337065/
https://www.ncbi.nlm.nih.gov/pubmed/32647821
http://dx.doi.org/10.1016/j.yjsbx.2019.100017
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author Kulakova, Alina
Indrakumar, Sowmya
Sønderby, Pernille
Gentiluomo, Lorenzo
Streicher, Werner
Roessner, Dierk
Frieß, Wolfgang
Peters, Günther H.J.
Harris, Pernille
author_facet Kulakova, Alina
Indrakumar, Sowmya
Sønderby, Pernille
Gentiluomo, Lorenzo
Streicher, Werner
Roessner, Dierk
Frieß, Wolfgang
Peters, Günther H.J.
Harris, Pernille
author_sort Kulakova, Alina
collection PubMed
description Transferrin is an attractive candidate for drug delivery due to its ability to cross the blood brain barrier. However, in order to be able to use it for therapeutic purposes, it is important to investigate how its stability depends on different formulation conditions. Combining high-throughput thermal and chemical denaturation studies with small angle X-ray scattering (SAXS) and molecular dynamics (MD) simulations, it was possible to connect the stability of transferrin with its conformational changes. Lowering pH induces opening of the transferrin N-lobe, which results in a negative effect on the stability. Presence of NaCl or arginine at low pH enhances the opening and has a negative impact on the overall protein stability. STATEMENT OF SIGNIFICANCE: Protein-based therapeutics have become an essential part of medical treatment. They are highly specific, have high affinity and fewer off-target effects. However, stabilization of proteins is critical, time-consuming, and expensive, and it is not yet possible to predict the behavior of proteins under different conditions. The current work is focused on a molecular understanding of the stability of human serum transferrin; a protein which is abundant in blood serum, may pass the blood brain barrier and therefore with high potential in drug delivery. Combination of high throughput unfolding techniques and structural studies, using small angle X-ray scattering and molecular dynamic simulations, allows us to understand the behavior of transferrin on a molecular level.
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spelling pubmed-73370652020-07-08 Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin Kulakova, Alina Indrakumar, Sowmya Sønderby, Pernille Gentiluomo, Lorenzo Streicher, Werner Roessner, Dierk Frieß, Wolfgang Peters, Günther H.J. Harris, Pernille J Struct Biol X Article Transferrin is an attractive candidate for drug delivery due to its ability to cross the blood brain barrier. However, in order to be able to use it for therapeutic purposes, it is important to investigate how its stability depends on different formulation conditions. Combining high-throughput thermal and chemical denaturation studies with small angle X-ray scattering (SAXS) and molecular dynamics (MD) simulations, it was possible to connect the stability of transferrin with its conformational changes. Lowering pH induces opening of the transferrin N-lobe, which results in a negative effect on the stability. Presence of NaCl or arginine at low pH enhances the opening and has a negative impact on the overall protein stability. STATEMENT OF SIGNIFICANCE: Protein-based therapeutics have become an essential part of medical treatment. They are highly specific, have high affinity and fewer off-target effects. However, stabilization of proteins is critical, time-consuming, and expensive, and it is not yet possible to predict the behavior of proteins under different conditions. The current work is focused on a molecular understanding of the stability of human serum transferrin; a protein which is abundant in blood serum, may pass the blood brain barrier and therefore with high potential in drug delivery. Combination of high throughput unfolding techniques and structural studies, using small angle X-ray scattering and molecular dynamic simulations, allows us to understand the behavior of transferrin on a molecular level. Elsevier 2019-11-30 /pmc/articles/PMC7337065/ /pubmed/32647821 http://dx.doi.org/10.1016/j.yjsbx.2019.100017 Text en © 2019 The Authors. Published by Elsevier Inc. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kulakova, Alina
Indrakumar, Sowmya
Sønderby, Pernille
Gentiluomo, Lorenzo
Streicher, Werner
Roessner, Dierk
Frieß, Wolfgang
Peters, Günther H.J.
Harris, Pernille
Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title_full Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title_fullStr Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title_full_unstemmed Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title_short Small angle X-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
title_sort small angle x-ray scattering and molecular dynamic simulations provide molecular insight for stability of recombinant human transferrin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7337065/
https://www.ncbi.nlm.nih.gov/pubmed/32647821
http://dx.doi.org/10.1016/j.yjsbx.2019.100017
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