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Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells

The bottom‐up construction of cell mimics has produced a range of membrane‐bound protocells that have been endowed with functionality and biochemical processes reminiscent of living systems. The contents of these compartments, however, experience semidilute conditions, whereas macromolecules in the...

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Autores principales: Yewdall, N. Amy, Buddingh, Bastiaan C., Altenburg, Wiggert J., Timmermans, Suzanne B. P. E., Vervoort, Daan F. M., Abdelmohsen, Loai K. E. A., Mason, Alexander F., van Hest, Jan C. M.
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/PMC6851677/
https://www.ncbi.nlm.nih.gov/pubmed/31012235
http://dx.doi.org/10.1002/cbic.201900195
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author Yewdall, N. Amy
Buddingh, Bastiaan C.
Altenburg, Wiggert J.
Timmermans, Suzanne B. P. E.
Vervoort, Daan F. M.
Abdelmohsen, Loai K. E. A.
Mason, Alexander F.
van Hest, Jan C. M.
author_facet Yewdall, N. Amy
Buddingh, Bastiaan C.
Altenburg, Wiggert J.
Timmermans, Suzanne B. P. E.
Vervoort, Daan F. M.
Abdelmohsen, Loai K. E. A.
Mason, Alexander F.
van Hest, Jan C. M.
author_sort Yewdall, N. Amy
collection PubMed
description The bottom‐up construction of cell mimics has produced a range of membrane‐bound protocells that have been endowed with functionality and biochemical processes reminiscent of living systems. The contents of these compartments, however, experience semidilute conditions, whereas macromolecules in the cytosol exist in protein‐rich, crowded environments that affect their physicochemical properties, such as diffusion and catalytic activity. Recently, complex coacervates have emerged as attractive protocellular models because their condensed interiors would be expected to mimic this crowding better. Here we explore some relevant physicochemical properties of a recently developed polymer‐stabilized coacervate system, such as the diffusion of macromolecules in the condensed coacervate phase, relative to in dilute solutions, the buffering capacity of the core, the molecular organization of the polymer membrane, the permeability characteristics of this membrane towards a wide range of compounds, and the behavior of a simple enzymatic reaction. In addition, either the coacervate charge or the cargo charge is engineered to allow the selective loading of protein cargo into the coacervate protocells. Our in‐depth characterization has revealed that these polymer‐stabilized coacervate protocells have many desirable properties, thus making them attractive candidates for the investigation of biochemical processes in stable, controlled, tunable, and increasingly cell‐like environments.
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spelling pubmed-68516772019-11-18 Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells Yewdall, N. Amy Buddingh, Bastiaan C. Altenburg, Wiggert J. Timmermans, Suzanne B. P. E. Vervoort, Daan F. M. Abdelmohsen, Loai K. E. A. Mason, Alexander F. van Hest, Jan C. M. Chembiochem Full Papers The bottom‐up construction of cell mimics has produced a range of membrane‐bound protocells that have been endowed with functionality and biochemical processes reminiscent of living systems. The contents of these compartments, however, experience semidilute conditions, whereas macromolecules in the cytosol exist in protein‐rich, crowded environments that affect their physicochemical properties, such as diffusion and catalytic activity. Recently, complex coacervates have emerged as attractive protocellular models because their condensed interiors would be expected to mimic this crowding better. Here we explore some relevant physicochemical properties of a recently developed polymer‐stabilized coacervate system, such as the diffusion of macromolecules in the condensed coacervate phase, relative to in dilute solutions, the buffering capacity of the core, the molecular organization of the polymer membrane, the permeability characteristics of this membrane towards a wide range of compounds, and the behavior of a simple enzymatic reaction. In addition, either the coacervate charge or the cargo charge is engineered to allow the selective loading of protein cargo into the coacervate protocells. Our in‐depth characterization has revealed that these polymer‐stabilized coacervate protocells have many desirable properties, thus making them attractive candidates for the investigation of biochemical processes in stable, controlled, tunable, and increasingly cell‐like environments. John Wiley and Sons Inc. 2019-07-25 2019-10-15 /pmc/articles/PMC6851677/ /pubmed/31012235 http://dx.doi.org/10.1002/cbic.201900195 Text en © 2019 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full Papers
Yewdall, N. Amy
Buddingh, Bastiaan C.
Altenburg, Wiggert J.
Timmermans, Suzanne B. P. E.
Vervoort, Daan F. M.
Abdelmohsen, Loai K. E. A.
Mason, Alexander F.
van Hest, Jan C. M.
Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title_full Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title_fullStr Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title_full_unstemmed Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title_short Physicochemical Characterization of Polymer‐Stabilized Coacervate Protocells
title_sort physicochemical characterization of polymer‐stabilized coacervate protocells
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851677/
https://www.ncbi.nlm.nih.gov/pubmed/31012235
http://dx.doi.org/10.1002/cbic.201900195
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