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Time-resolved comparative molecular evolution of oxygenic photosynthesis

Oxygenic photosynthesis starts with the oxidation of water to O(2), a light-driven reaction catalysed by photosystem II. Cyanobacteria are the only prokaryotes capable of water oxidation and therefore, it is assumed that the origin of oxygenic photosynthesis is a late innovation relative to the orig...

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Autores principales: Oliver, Thomas, Sánchez-Baracaldo, Patricia, Larkum, Anthony W., Rutherford, A. William, Cardona, Tanai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8047818/
https://www.ncbi.nlm.nih.gov/pubmed/33617856
http://dx.doi.org/10.1016/j.bbabio.2021.148400
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author Oliver, Thomas
Sánchez-Baracaldo, Patricia
Larkum, Anthony W.
Rutherford, A. William
Cardona, Tanai
author_facet Oliver, Thomas
Sánchez-Baracaldo, Patricia
Larkum, Anthony W.
Rutherford, A. William
Cardona, Tanai
author_sort Oliver, Thomas
collection PubMed
description Oxygenic photosynthesis starts with the oxidation of water to O(2), a light-driven reaction catalysed by photosystem II. Cyanobacteria are the only prokaryotes capable of water oxidation and therefore, it is assumed that the origin of oxygenic photosynthesis is a late innovation relative to the origin of life and bioenergetics. However, when exactly water oxidation originated remains an unanswered question. Here we use phylogenetic analysis to study a gene duplication event that is unique to photosystem II: the duplication that led to the evolution of the core antenna subunits CP43 and CP47. We compare the changes in the rates of evolution of this duplication with those of some of the oldest well-described events in the history of life: namely, the duplication leading to the Alpha and Beta subunits of the catalytic head of ATP synthase, and the divergence of archaeal and bacterial RNA polymerases and ribosomes. We also compare it with more recent events such as the duplication of Cyanobacteria-specific FtsH metalloprotease subunits and the radiation leading to Margulisbacteria, Sericytochromatia, Vampirovibrionia, and other clades containing anoxygenic phototrophs. We demonstrate that the ancestral core duplication of photosystem II exhibits patterns in the rates of protein evolution through geological time that are nearly identical to those of the ATP synthase, RNA polymerase, or the ribosome. Furthermore, we use ancestral sequence reconstruction in combination with comparative structural biology of photosystem subunits, to provide additional evidence supporting the premise that water oxidation had originated before the ancestral core duplications. Our work suggests that photosynthetic water oxidation originated closer to the origin of life and bioenergetics than can be documented based on phylogenetic or phylogenomic species trees alone.
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spelling pubmed-80478182021-06-01 Time-resolved comparative molecular evolution of oxygenic photosynthesis Oliver, Thomas Sánchez-Baracaldo, Patricia Larkum, Anthony W. Rutherford, A. William Cardona, Tanai Biochim Biophys Acta Bioenerg Article Oxygenic photosynthesis starts with the oxidation of water to O(2), a light-driven reaction catalysed by photosystem II. Cyanobacteria are the only prokaryotes capable of water oxidation and therefore, it is assumed that the origin of oxygenic photosynthesis is a late innovation relative to the origin of life and bioenergetics. However, when exactly water oxidation originated remains an unanswered question. Here we use phylogenetic analysis to study a gene duplication event that is unique to photosystem II: the duplication that led to the evolution of the core antenna subunits CP43 and CP47. We compare the changes in the rates of evolution of this duplication with those of some of the oldest well-described events in the history of life: namely, the duplication leading to the Alpha and Beta subunits of the catalytic head of ATP synthase, and the divergence of archaeal and bacterial RNA polymerases and ribosomes. We also compare it with more recent events such as the duplication of Cyanobacteria-specific FtsH metalloprotease subunits and the radiation leading to Margulisbacteria, Sericytochromatia, Vampirovibrionia, and other clades containing anoxygenic phototrophs. We demonstrate that the ancestral core duplication of photosystem II exhibits patterns in the rates of protein evolution through geological time that are nearly identical to those of the ATP synthase, RNA polymerase, or the ribosome. Furthermore, we use ancestral sequence reconstruction in combination with comparative structural biology of photosystem subunits, to provide additional evidence supporting the premise that water oxidation had originated before the ancestral core duplications. Our work suggests that photosynthetic water oxidation originated closer to the origin of life and bioenergetics than can be documented based on phylogenetic or phylogenomic species trees alone. Elsevier 2021-06-01 /pmc/articles/PMC8047818/ /pubmed/33617856 http://dx.doi.org/10.1016/j.bbabio.2021.148400 Text en © 2021 The Authors. Published by Elsevier B.V. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Oliver, Thomas
Sánchez-Baracaldo, Patricia
Larkum, Anthony W.
Rutherford, A. William
Cardona, Tanai
Time-resolved comparative molecular evolution of oxygenic photosynthesis
title Time-resolved comparative molecular evolution of oxygenic photosynthesis
title_full Time-resolved comparative molecular evolution of oxygenic photosynthesis
title_fullStr Time-resolved comparative molecular evolution of oxygenic photosynthesis
title_full_unstemmed Time-resolved comparative molecular evolution of oxygenic photosynthesis
title_short Time-resolved comparative molecular evolution of oxygenic photosynthesis
title_sort time-resolved comparative molecular evolution of oxygenic photosynthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8047818/
https://www.ncbi.nlm.nih.gov/pubmed/33617856
http://dx.doi.org/10.1016/j.bbabio.2021.148400
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