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Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells

[Image: see text] Self-assembling single-chain amphiphiles available in the prebiotic environment likely played a fundamental role in the advent of primitive cell cycles. However, the instability of prebiotic fatty acid-based membranes to temperature and pH seems to suggest that primitive cells coul...

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Autores principales: Rubio-Sánchez, Roger, O’Flaherty, Derek K., Wang, Anna, Coscia, Francesca, Petris, Gianluca, Di Michele, Lorenzo, Cicuta, Pietro, Bonfio, Claudia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8607435/
https://www.ncbi.nlm.nih.gov/pubmed/34597506
http://dx.doi.org/10.1021/jacs.1c06595
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author Rubio-Sánchez, Roger
O’Flaherty, Derek K.
Wang, Anna
Coscia, Francesca
Petris, Gianluca
Di Michele, Lorenzo
Cicuta, Pietro
Bonfio, Claudia
author_facet Rubio-Sánchez, Roger
O’Flaherty, Derek K.
Wang, Anna
Coscia, Francesca
Petris, Gianluca
Di Michele, Lorenzo
Cicuta, Pietro
Bonfio, Claudia
author_sort Rubio-Sánchez, Roger
collection PubMed
description [Image: see text] Self-assembling single-chain amphiphiles available in the prebiotic environment likely played a fundamental role in the advent of primitive cell cycles. However, the instability of prebiotic fatty acid-based membranes to temperature and pH seems to suggest that primitive cells could only host prebiotically relevant processes in a narrow range of nonfluctuating environmental conditions. Here we propose that membrane phase transitions, driven by environmental fluctuations, enabled the generation of daughter protocells with reshuffled content. A reversible membrane-to-oil phase transition accounts for the dissolution of fatty acid-based vesicles at high temperatures and the concomitant release of protocellular content. At low temperatures, fatty acid bilayers reassemble and encapsulate reshuffled material in a new cohort of protocells. Notably, we find that our disassembly/reassembly cycle drives the emergence of functional RNA-containing primitive cells from parent nonfunctional compartments. Thus, by exploiting the intrinsic instability of prebiotic fatty acid vesicles, our results point at an environmentally driven tunable prebiotic process, which supports the release and reshuffling of oligonucleotides and membrane components, potentially leading to a new generation of protocells with superior traits. In the absence of protocellular transport machinery, the environmentally driven disassembly/assembly cycle proposed herein would have plausibly supported protocellular content reshuffling transmitted to primitive cell progeny, hinting at a potential mechanism important to initiate Darwinian evolution of early life forms.
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spelling pubmed-86074352021-11-23 Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells Rubio-Sánchez, Roger O’Flaherty, Derek K. Wang, Anna Coscia, Francesca Petris, Gianluca Di Michele, Lorenzo Cicuta, Pietro Bonfio, Claudia J Am Chem Soc [Image: see text] Self-assembling single-chain amphiphiles available in the prebiotic environment likely played a fundamental role in the advent of primitive cell cycles. However, the instability of prebiotic fatty acid-based membranes to temperature and pH seems to suggest that primitive cells could only host prebiotically relevant processes in a narrow range of nonfluctuating environmental conditions. Here we propose that membrane phase transitions, driven by environmental fluctuations, enabled the generation of daughter protocells with reshuffled content. A reversible membrane-to-oil phase transition accounts for the dissolution of fatty acid-based vesicles at high temperatures and the concomitant release of protocellular content. At low temperatures, fatty acid bilayers reassemble and encapsulate reshuffled material in a new cohort of protocells. Notably, we find that our disassembly/reassembly cycle drives the emergence of functional RNA-containing primitive cells from parent nonfunctional compartments. Thus, by exploiting the intrinsic instability of prebiotic fatty acid vesicles, our results point at an environmentally driven tunable prebiotic process, which supports the release and reshuffling of oligonucleotides and membrane components, potentially leading to a new generation of protocells with superior traits. In the absence of protocellular transport machinery, the environmentally driven disassembly/assembly cycle proposed herein would have plausibly supported protocellular content reshuffling transmitted to primitive cell progeny, hinting at a potential mechanism important to initiate Darwinian evolution of early life forms. American Chemical Society 2021-10-01 2021-10-13 /pmc/articles/PMC8607435/ /pubmed/34597506 http://dx.doi.org/10.1021/jacs.1c06595 Text en © 2021 MRC Laboratory of Molecular Biology. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Rubio-Sánchez, Roger
O’Flaherty, Derek K.
Wang, Anna
Coscia, Francesca
Petris, Gianluca
Di Michele, Lorenzo
Cicuta, Pietro
Bonfio, Claudia
Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title_full Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title_fullStr Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title_full_unstemmed Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title_short Thermally Driven Membrane Phase Transitions Enable Content Reshuffling in Primitive Cells
title_sort thermally driven membrane phase transitions enable content reshuffling in primitive cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8607435/
https://www.ncbi.nlm.nih.gov/pubmed/34597506
http://dx.doi.org/10.1021/jacs.1c06595
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