Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.

In this work we attempt to find out the extent to which realistic prebiotic compartments, such as fatty acid vesicles, would constrain the chemical network dynamics that could have sustained a minimal form of metabolism. We combine experimental and simulation results to establish the conditions unde...

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Main Authors: Gabriel Piedrafita, Kepa Ruiz-Mirazo, Pierre-Alain Monnard, Athel Cornish-Bowden, Francisco Montero
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/22761803/pdf/?tool=EBI
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spelling doaj-1807a6ea0523406eae6edf68de8fa0ba2021-03-03T20:28:36ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0176e3948010.1371/journal.pone.0039480Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.Gabriel PiedrafitaKepa Ruiz-MirazoPierre-Alain MonnardAthel Cornish-BowdenFrancisco MonteroIn this work we attempt to find out the extent to which realistic prebiotic compartments, such as fatty acid vesicles, would constrain the chemical network dynamics that could have sustained a minimal form of metabolism. We combine experimental and simulation results to establish the conditions under which a reaction network with a catalytically closed organization (more specifically, an (M,R-system) would overcome the potential problem of self-suffocation that arises from the limited accessibility of nutrients to its internal reaction domain. The relationship between the permeability of the membrane, the lifetime of the key catalysts and their efficiency (reaction rate enhancement) turns out to be critical. In particular, we show how permeability values constrain the characteristic time scale of the bounded protometabolic processes. From this concrete and illustrative example we finally extend the discussion to a wider evolutionary context.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/22761803/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Gabriel Piedrafita
Kepa Ruiz-Mirazo
Pierre-Alain Monnard
Athel Cornish-Bowden
Francisco Montero
spellingShingle Gabriel Piedrafita
Kepa Ruiz-Mirazo
Pierre-Alain Monnard
Athel Cornish-Bowden
Francisco Montero
Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
PLoS ONE
author_facet Gabriel Piedrafita
Kepa Ruiz-Mirazo
Pierre-Alain Monnard
Athel Cornish-Bowden
Francisco Montero
author_sort Gabriel Piedrafita
title Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
title_short Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
title_full Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
title_fullStr Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
title_full_unstemmed Viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
title_sort viability conditions for a compartmentalized protometabolic system: a semi-empirical approach.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description In this work we attempt to find out the extent to which realistic prebiotic compartments, such as fatty acid vesicles, would constrain the chemical network dynamics that could have sustained a minimal form of metabolism. We combine experimental and simulation results to establish the conditions under which a reaction network with a catalytically closed organization (more specifically, an (M,R-system) would overcome the potential problem of self-suffocation that arises from the limited accessibility of nutrients to its internal reaction domain. The relationship between the permeability of the membrane, the lifetime of the key catalysts and their efficiency (reaction rate enhancement) turns out to be critical. In particular, we show how permeability values constrain the characteristic time scale of the bounded protometabolic processes. From this concrete and illustrative example we finally extend the discussion to a wider evolutionary context.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/22761803/pdf/?tool=EBI
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