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Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates

This study presents a simple strategy for the sequestration of globular proteins as clients into synthetic polypeptide-based complex coacervates as a scaffold, thereby recapitulating the scaffold-client interaction found in biological condensates. Considering the low net charges of scaffold proteins...

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Autores principales: K C, Biplab, Nii, Teruki, Mori, Takeshi, Katayama, Yoshiki, Akihiro Kishimura
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10283495/
https://www.ncbi.nlm.nih.gov/pubmed/37350836
http://dx.doi.org/10.1039/d3sc00993a
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author K C, Biplab
Nii, Teruki
Mori, Takeshi
Katayama, Yoshiki
Akihiro Kishimura
author_facet K C, Biplab
Nii, Teruki
Mori, Takeshi
Katayama, Yoshiki
Akihiro Kishimura
author_sort K C, Biplab
collection PubMed
description This study presents a simple strategy for the sequestration of globular proteins as clients into synthetic polypeptide-based complex coacervates as a scaffold, thereby recapitulating the scaffold-client interaction found in biological condensates. Considering the low net charges of scaffold proteins participating in biological condensates, the linear charge density (σ) on the polyanion, polyethylene glycol-b-poly(aspartic acids), was reduced by introducing hydroxypropyl or butyl moieties as a charge-neutral pendant group. Complex coacervate prepared from the series of reduced-σ polyanions and the polycation, homo-poly-l-lysine, could act as a scaffold that sequestered various globular proteins with high encapsulation efficiency (>80%), which sometimes involved further agglomerations in the coacervates. The sequestration of proteins was basically driven by electrostatic interaction, and therefore depended on the ionic strength and charges of the proteins. However, based on the results of polymer partitioning in the coacervate in the presence or absence of proteins, charge ratios between cationic and anionic polymers were maintained at the charge ratio of unity. Therefore, the origin of the electrostatic interaction with proteins is considered to be dynamic frustrated charges in the complex coacervates created by non-neutralized charges on polymer chains. Furthermore, fluorescence recovery after photobleaching (FRAP) measurements showed that the interaction of side-chains and proteins changed the dynamic property of coacervates. It also suggested that the physical properties of the condensate are tunable before and after the sequestration of globular proteins. The present rational design approach of the scaffold-client interaction is helpful for basic life-science research and the applied frontier of artificial organelles.
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spelling pubmed-102834952023-06-22 Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates K C, Biplab Nii, Teruki Mori, Takeshi Katayama, Yoshiki Akihiro Kishimura Chem Sci Chemistry This study presents a simple strategy for the sequestration of globular proteins as clients into synthetic polypeptide-based complex coacervates as a scaffold, thereby recapitulating the scaffold-client interaction found in biological condensates. Considering the low net charges of scaffold proteins participating in biological condensates, the linear charge density (σ) on the polyanion, polyethylene glycol-b-poly(aspartic acids), was reduced by introducing hydroxypropyl or butyl moieties as a charge-neutral pendant group. Complex coacervate prepared from the series of reduced-σ polyanions and the polycation, homo-poly-l-lysine, could act as a scaffold that sequestered various globular proteins with high encapsulation efficiency (>80%), which sometimes involved further agglomerations in the coacervates. The sequestration of proteins was basically driven by electrostatic interaction, and therefore depended on the ionic strength and charges of the proteins. However, based on the results of polymer partitioning in the coacervate in the presence or absence of proteins, charge ratios between cationic and anionic polymers were maintained at the charge ratio of unity. Therefore, the origin of the electrostatic interaction with proteins is considered to be dynamic frustrated charges in the complex coacervates created by non-neutralized charges on polymer chains. Furthermore, fluorescence recovery after photobleaching (FRAP) measurements showed that the interaction of side-chains and proteins changed the dynamic property of coacervates. It also suggested that the physical properties of the condensate are tunable before and after the sequestration of globular proteins. The present rational design approach of the scaffold-client interaction is helpful for basic life-science research and the applied frontier of artificial organelles. The Royal Society of Chemistry 2023-05-19 /pmc/articles/PMC10283495/ /pubmed/37350836 http://dx.doi.org/10.1039/d3sc00993a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
K C, Biplab
Nii, Teruki
Mori, Takeshi
Katayama, Yoshiki
Akihiro Kishimura
Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title_full Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title_fullStr Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title_full_unstemmed Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title_short Dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
title_sort dynamic frustrated charge hotspots created by charge density modulation sequester globular proteins into complex coacervates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10283495/
https://www.ncbi.nlm.nih.gov/pubmed/37350836
http://dx.doi.org/10.1039/d3sc00993a
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