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SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis

Protein function can be modulated by phase transitions in their material properties, which can range from liquid- to solid-like; yet, the mechanisms that drive these transitions and whether they are important for physiology are still unknown. In the model plant Arabidopsis, we show that developmenta...

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Autores principales: Liu, Chen, Mentzelopoulou, Andriani, Papagavriil, Fotini, Ramachandran, Prashanth, Perraki, Artemis, Claus, Lucas, Barg, Sebastian, Dörmann, Peter, Jaillais, Yvon, Johnen, Philipp, Russinova, Eugenia, Gizeli, Electra, Schaaf, Gabriel, Moschou, Panagiotis Nikolaou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10538751/
https://www.ncbi.nlm.nih.gov/pubmed/37721949
http://dx.doi.org/10.1371/journal.pbio.3002305
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author Liu, Chen
Mentzelopoulou, Andriani
Papagavriil, Fotini
Ramachandran, Prashanth
Perraki, Artemis
Claus, Lucas
Barg, Sebastian
Dörmann, Peter
Jaillais, Yvon
Johnen, Philipp
Russinova, Eugenia
Gizeli, Electra
Schaaf, Gabriel
Moschou, Panagiotis Nikolaou
author_facet Liu, Chen
Mentzelopoulou, Andriani
Papagavriil, Fotini
Ramachandran, Prashanth
Perraki, Artemis
Claus, Lucas
Barg, Sebastian
Dörmann, Peter
Jaillais, Yvon
Johnen, Philipp
Russinova, Eugenia
Gizeli, Electra
Schaaf, Gabriel
Moschou, Panagiotis Nikolaou
author_sort Liu, Chen
collection PubMed
description Protein function can be modulated by phase transitions in their material properties, which can range from liquid- to solid-like; yet, the mechanisms that drive these transitions and whether they are important for physiology are still unknown. In the model plant Arabidopsis, we show that developmental robustness is reinforced by phase transitions of the plasma membrane-bound lipid-binding protein SEC14-like. Using imaging, genetics, and in vitro reconstitution experiments, we show that SEC14-like undergoes liquid-like phase separation in the root stem cells. Outside the stem cell niche, SEC14-like associates with the caspase-like protease separase and conserved microtubule motors at unique polar plasma membrane interfaces. In these interfaces, SEC14-like undergoes processing by separase, which promotes its liquid-to-solid transition. This transition is important for root development, as lines expressing an uncleavable SEC14-like variant or mutants of separase and associated microtubule motors show similar developmental phenotypes. Furthermore, the processed and solidified but not the liquid form of SEC14-like interacts with and regulates the polarity of the auxin efflux carrier PINFORMED2. This work demonstrates that robust development can involve liquid-to-solid transitions mediated by proteolysis at unique plasma membrane interfaces.
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spelling pubmed-105387512023-09-29 SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis Liu, Chen Mentzelopoulou, Andriani Papagavriil, Fotini Ramachandran, Prashanth Perraki, Artemis Claus, Lucas Barg, Sebastian Dörmann, Peter Jaillais, Yvon Johnen, Philipp Russinova, Eugenia Gizeli, Electra Schaaf, Gabriel Moschou, Panagiotis Nikolaou PLoS Biol Research Article Protein function can be modulated by phase transitions in their material properties, which can range from liquid- to solid-like; yet, the mechanisms that drive these transitions and whether they are important for physiology are still unknown. In the model plant Arabidopsis, we show that developmental robustness is reinforced by phase transitions of the plasma membrane-bound lipid-binding protein SEC14-like. Using imaging, genetics, and in vitro reconstitution experiments, we show that SEC14-like undergoes liquid-like phase separation in the root stem cells. Outside the stem cell niche, SEC14-like associates with the caspase-like protease separase and conserved microtubule motors at unique polar plasma membrane interfaces. In these interfaces, SEC14-like undergoes processing by separase, which promotes its liquid-to-solid transition. This transition is important for root development, as lines expressing an uncleavable SEC14-like variant or mutants of separase and associated microtubule motors show similar developmental phenotypes. Furthermore, the processed and solidified but not the liquid form of SEC14-like interacts with and regulates the polarity of the auxin efflux carrier PINFORMED2. This work demonstrates that robust development can involve liquid-to-solid transitions mediated by proteolysis at unique plasma membrane interfaces. Public Library of Science 2023-09-18 /pmc/articles/PMC10538751/ /pubmed/37721949 http://dx.doi.org/10.1371/journal.pbio.3002305 Text en © 2023 Liu et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Liu, Chen
Mentzelopoulou, Andriani
Papagavriil, Fotini
Ramachandran, Prashanth
Perraki, Artemis
Claus, Lucas
Barg, Sebastian
Dörmann, Peter
Jaillais, Yvon
Johnen, Philipp
Russinova, Eugenia
Gizeli, Electra
Schaaf, Gabriel
Moschou, Panagiotis Nikolaou
SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title_full SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title_fullStr SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title_full_unstemmed SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title_short SEC14-like condensate phase transitions at plasma membranes regulate root growth in Arabidopsis
title_sort sec14-like condensate phase transitions at plasma membranes regulate root growth in arabidopsis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10538751/
https://www.ncbi.nlm.nih.gov/pubmed/37721949
http://dx.doi.org/10.1371/journal.pbio.3002305
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