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Ship in a bottle: confinement-promoted self-assembly

Understanding self-assembly in confined spaces is essential to fully understand molecular processes in confined cell compartments and will offer clues on the behaviour of simple confined systems, such as protocells and lipid-vesicle based devices. Using a model system composed of lipid vesicles, a m...

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Autores principales: Lopez-Fontal, Elkin, Grochmal, Anna, Foran, Tom, Milanesi, Lilia, Tomas, Salvador
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5885595/
https://www.ncbi.nlm.nih.gov/pubmed/29675219
http://dx.doi.org/10.1039/c7sc04553k
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author Lopez-Fontal, Elkin
Grochmal, Anna
Foran, Tom
Milanesi, Lilia
Tomas, Salvador
author_facet Lopez-Fontal, Elkin
Grochmal, Anna
Foran, Tom
Milanesi, Lilia
Tomas, Salvador
author_sort Lopez-Fontal, Elkin
collection PubMed
description Understanding self-assembly in confined spaces is essential to fully understand molecular processes in confined cell compartments and will offer clues on the behaviour of simple confined systems, such as protocells and lipid-vesicle based devices. Using a model system composed of lipid vesicles, a membrane impermeable receptor and a membrane-permeable ligand, we have studied in detail how compartmentalization modulates the interaction between the confined receptor and its ligand. We demonstrate that confinement of one of the building blocks stabilizes complex self-assembled structures to the extent that dilution leads, counterintuitively, to the formation of long range assemblies. The behaviour of the system can be explained by considering a confinement factor that is analogous, although not identical, to the effective molarity for intramolecular binding events. The confinement effect renders complex self-assembled species robust and persistent under conditions where they do not form in bulk solution. Moreover, we show that the formation of stable complex assemblies in systems compartmentalized by semi-permeable membranes does not require the prior confinement of all components, but only that of key membrane impermeable building blocks. To use a macroscopic analogy, lipid vesicles are like ship-in-a bottle constructs that are capable of directing the assembly of the confined ship following the confinement of a few key wooden planks. Therefore, we believe that the confinement effect described here would have played an important role in shaping the increase of chemical complexity within protocells during the first stages of abiogenesis. Additionally, we argue that this effect can be exploited to design increasingly efficient functional devices based on comparatively simple vesicles for applications in biosensing, nanoreactors and drug delivery vehicles.
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spelling pubmed-58855952018-04-19 Ship in a bottle: confinement-promoted self-assembly Lopez-Fontal, Elkin Grochmal, Anna Foran, Tom Milanesi, Lilia Tomas, Salvador Chem Sci Chemistry Understanding self-assembly in confined spaces is essential to fully understand molecular processes in confined cell compartments and will offer clues on the behaviour of simple confined systems, such as protocells and lipid-vesicle based devices. Using a model system composed of lipid vesicles, a membrane impermeable receptor and a membrane-permeable ligand, we have studied in detail how compartmentalization modulates the interaction between the confined receptor and its ligand. We demonstrate that confinement of one of the building blocks stabilizes complex self-assembled structures to the extent that dilution leads, counterintuitively, to the formation of long range assemblies. The behaviour of the system can be explained by considering a confinement factor that is analogous, although not identical, to the effective molarity for intramolecular binding events. The confinement effect renders complex self-assembled species robust and persistent under conditions where they do not form in bulk solution. Moreover, we show that the formation of stable complex assemblies in systems compartmentalized by semi-permeable membranes does not require the prior confinement of all components, but only that of key membrane impermeable building blocks. To use a macroscopic analogy, lipid vesicles are like ship-in-a bottle constructs that are capable of directing the assembly of the confined ship following the confinement of a few key wooden planks. Therefore, we believe that the confinement effect described here would have played an important role in shaping the increase of chemical complexity within protocells during the first stages of abiogenesis. Additionally, we argue that this effect can be exploited to design increasingly efficient functional devices based on comparatively simple vesicles for applications in biosensing, nanoreactors and drug delivery vehicles. Royal Society of Chemistry 2017-12-07 /pmc/articles/PMC5885595/ /pubmed/29675219 http://dx.doi.org/10.1039/c7sc04553k Text en This journal is © The Royal Society of Chemistry 2018 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Lopez-Fontal, Elkin
Grochmal, Anna
Foran, Tom
Milanesi, Lilia
Tomas, Salvador
Ship in a bottle: confinement-promoted self-assembly
title Ship in a bottle: confinement-promoted self-assembly
title_full Ship in a bottle: confinement-promoted self-assembly
title_fullStr Ship in a bottle: confinement-promoted self-assembly
title_full_unstemmed Ship in a bottle: confinement-promoted self-assembly
title_short Ship in a bottle: confinement-promoted self-assembly
title_sort ship in a bottle: confinement-promoted self-assembly
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5885595/
https://www.ncbi.nlm.nih.gov/pubmed/29675219
http://dx.doi.org/10.1039/c7sc04553k
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