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A conserved pressure-driven mechanism for regulating cytosolic osmolarity

Controlling intracellular osmolarity is essential to all cellular life. Cells that live in hypo-osmotic environments like freshwater must constantly battle water influx to avoid swelling until they burst. Many eukaryotic cells use contractile vacuoles to collect excess water from the cytosol and pum...

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Autores principales: Velle, Katrina B., Garner, Rikki M., Beckford, Tatihana K., Weeda, Makaela, Liu, Chunzi, Kennard, Andrew S., Edwards, Marc, Fritz-Laylin, Lillian K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10002747/
https://www.ncbi.nlm.nih.gov/pubmed/36909496
http://dx.doi.org/10.1101/2023.03.01.529730
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author Velle, Katrina B.
Garner, Rikki M.
Beckford, Tatihana K.
Weeda, Makaela
Liu, Chunzi
Kennard, Andrew S.
Edwards, Marc
Fritz-Laylin, Lillian K.
author_facet Velle, Katrina B.
Garner, Rikki M.
Beckford, Tatihana K.
Weeda, Makaela
Liu, Chunzi
Kennard, Andrew S.
Edwards, Marc
Fritz-Laylin, Lillian K.
author_sort Velle, Katrina B.
collection PubMed
description Controlling intracellular osmolarity is essential to all cellular life. Cells that live in hypo-osmotic environments like freshwater must constantly battle water influx to avoid swelling until they burst. Many eukaryotic cells use contractile vacuoles to collect excess water from the cytosol and pump it out of the cell. Although contractile vacuoles are essential to many species, including important pathogens, the mechanisms that control their dynamics remain unclear. To identify basic principles governing contractile vacuole function, we here investigate the molecular mechanisms of two species with distinct vacuolar morphologies from different eukaryotic lineages—the discoban Naegleria gruberi, and the amoebozoan slime mold Dictyostelium discoideum. Using quantitative cell biology we find that, although these species respond differently to osmotic challenges, they both use actin for osmoregulation, as well as vacuolar-type proton pumps for filling contractile vacuoles. We also use analytical modeling to show that cytoplasmic pressure is sufficient to drive water out of contractile vacuoles in these species, similar to findings from the alveolate Paramecium multimicronucleatum. Because these three lineages diverged well over a billion years ago, we propose that this represents an ancient eukaryotic mechanism of osmoregulation.
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spelling pubmed-100027472023-03-11 A conserved pressure-driven mechanism for regulating cytosolic osmolarity Velle, Katrina B. Garner, Rikki M. Beckford, Tatihana K. Weeda, Makaela Liu, Chunzi Kennard, Andrew S. Edwards, Marc Fritz-Laylin, Lillian K. bioRxiv Article Controlling intracellular osmolarity is essential to all cellular life. Cells that live in hypo-osmotic environments like freshwater must constantly battle water influx to avoid swelling until they burst. Many eukaryotic cells use contractile vacuoles to collect excess water from the cytosol and pump it out of the cell. Although contractile vacuoles are essential to many species, including important pathogens, the mechanisms that control their dynamics remain unclear. To identify basic principles governing contractile vacuole function, we here investigate the molecular mechanisms of two species with distinct vacuolar morphologies from different eukaryotic lineages—the discoban Naegleria gruberi, and the amoebozoan slime mold Dictyostelium discoideum. Using quantitative cell biology we find that, although these species respond differently to osmotic challenges, they both use actin for osmoregulation, as well as vacuolar-type proton pumps for filling contractile vacuoles. We also use analytical modeling to show that cytoplasmic pressure is sufficient to drive water out of contractile vacuoles in these species, similar to findings from the alveolate Paramecium multimicronucleatum. Because these three lineages diverged well over a billion years ago, we propose that this represents an ancient eukaryotic mechanism of osmoregulation. Cold Spring Harbor Laboratory 2023-03-02 /pmc/articles/PMC10002747/ /pubmed/36909496 http://dx.doi.org/10.1101/2023.03.01.529730 Text en https://creativecommons.org/licenses/by-nc/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (https://creativecommons.org/licenses/by-nc/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Velle, Katrina B.
Garner, Rikki M.
Beckford, Tatihana K.
Weeda, Makaela
Liu, Chunzi
Kennard, Andrew S.
Edwards, Marc
Fritz-Laylin, Lillian K.
A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title_full A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title_fullStr A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title_full_unstemmed A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title_short A conserved pressure-driven mechanism for regulating cytosolic osmolarity
title_sort conserved pressure-driven mechanism for regulating cytosolic osmolarity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10002747/
https://www.ncbi.nlm.nih.gov/pubmed/36909496
http://dx.doi.org/10.1101/2023.03.01.529730
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