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A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores

Marine coccolithophorid phytoplankton are major producers of biogenic calcite, playing a significant role in the global carbon cycle. Predicting the impacts of ocean acidification on coccolithophore calcification has received much recent attention and requires improved knowledge of cellular calcific...

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Detalles Bibliográficos
Autores principales: Taylor, Alison R., Chrachri, Abdul, Wheeler, Glen, Goddard, Helen, Brownlee, Colin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119654/
https://www.ncbi.nlm.nih.gov/pubmed/21713028
http://dx.doi.org/10.1371/journal.pbio.1001085
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author Taylor, Alison R.
Chrachri, Abdul
Wheeler, Glen
Goddard, Helen
Brownlee, Colin
author_facet Taylor, Alison R.
Chrachri, Abdul
Wheeler, Glen
Goddard, Helen
Brownlee, Colin
author_sort Taylor, Alison R.
collection PubMed
description Marine coccolithophorid phytoplankton are major producers of biogenic calcite, playing a significant role in the global carbon cycle. Predicting the impacts of ocean acidification on coccolithophore calcification has received much recent attention and requires improved knowledge of cellular calcification mechanisms. Uniquely amongst calcifying organisms, coccolithophores produce calcified scales (coccoliths) in an intracellular compartment and secrete them to the cell surface, requiring large transcellular ionic fluxes to support calcification. In particular, intracellular calcite precipitation using HCO(3) (−) as the substrate generates equimolar quantities of H(+) that must be rapidly removed to prevent cytoplasmic acidification. We have used electrophysiological approaches to identify a plasma membrane voltage-gated H(+) conductance in Coccolithus pelagicus ssp braarudii with remarkably similar biophysical and functional properties to those found in metazoans. We show that both C. pelagicus and Emiliania huxleyi possess homologues of metazoan H(v)1 H(+) channels, which function as voltage-gated H(+) channels when expressed in heterologous systems. Homologues of the coccolithophore H(+) channels were also identified in a diversity of eukaryotes, suggesting a wide range of cellular roles for the H(v)1 class of proteins. Using single cell imaging, we demonstrate that the coccolithophore H(+) conductance mediates rapid H(+) efflux and plays an important role in pH homeostasis in calcifying cells. The results demonstrate a novel cellular role for voltage gated H(+) channels and provide mechanistic insight into biomineralisation by establishing a direct link between pH homeostasis and calcification. As the coccolithophore H(+) conductance is dependent on the trans-membrane H(+) electrochemical gradient, this mechanism will be directly impacted by, and may underlie adaptation to, ocean acidification. The presence of this H(+) efflux pathway suggests that there is no obligate use of H(+) derived from calcification for intracellular CO(2) generation. Furthermore, the presence of H(v)1 class ion channels in a wide range of extant eukaryote groups indicates they evolved in an early common ancestor.
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spelling pubmed-31196542011-06-27 A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores Taylor, Alison R. Chrachri, Abdul Wheeler, Glen Goddard, Helen Brownlee, Colin PLoS Biol Research Article Marine coccolithophorid phytoplankton are major producers of biogenic calcite, playing a significant role in the global carbon cycle. Predicting the impacts of ocean acidification on coccolithophore calcification has received much recent attention and requires improved knowledge of cellular calcification mechanisms. Uniquely amongst calcifying organisms, coccolithophores produce calcified scales (coccoliths) in an intracellular compartment and secrete them to the cell surface, requiring large transcellular ionic fluxes to support calcification. In particular, intracellular calcite precipitation using HCO(3) (−) as the substrate generates equimolar quantities of H(+) that must be rapidly removed to prevent cytoplasmic acidification. We have used electrophysiological approaches to identify a plasma membrane voltage-gated H(+) conductance in Coccolithus pelagicus ssp braarudii with remarkably similar biophysical and functional properties to those found in metazoans. We show that both C. pelagicus and Emiliania huxleyi possess homologues of metazoan H(v)1 H(+) channels, which function as voltage-gated H(+) channels when expressed in heterologous systems. Homologues of the coccolithophore H(+) channels were also identified in a diversity of eukaryotes, suggesting a wide range of cellular roles for the H(v)1 class of proteins. Using single cell imaging, we demonstrate that the coccolithophore H(+) conductance mediates rapid H(+) efflux and plays an important role in pH homeostasis in calcifying cells. The results demonstrate a novel cellular role for voltage gated H(+) channels and provide mechanistic insight into biomineralisation by establishing a direct link between pH homeostasis and calcification. As the coccolithophore H(+) conductance is dependent on the trans-membrane H(+) electrochemical gradient, this mechanism will be directly impacted by, and may underlie adaptation to, ocean acidification. The presence of this H(+) efflux pathway suggests that there is no obligate use of H(+) derived from calcification for intracellular CO(2) generation. Furthermore, the presence of H(v)1 class ion channels in a wide range of extant eukaryote groups indicates they evolved in an early common ancestor. Public Library of Science 2011-06-21 /pmc/articles/PMC3119654/ /pubmed/21713028 http://dx.doi.org/10.1371/journal.pbio.1001085 Text en Taylor et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Taylor, Alison R.
Chrachri, Abdul
Wheeler, Glen
Goddard, Helen
Brownlee, Colin
A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title_full A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title_fullStr A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title_full_unstemmed A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title_short A Voltage-Gated H(+) Channel Underlying pH Homeostasis in Calcifying Coccolithophores
title_sort voltage-gated h(+) channel underlying ph homeostasis in calcifying coccolithophores
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119654/
https://www.ncbi.nlm.nih.gov/pubmed/21713028
http://dx.doi.org/10.1371/journal.pbio.1001085
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