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PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress

Cell and organelle membranes consist of a complex mixture of phospholipids (PLs) that determine their size, shape, and function. Phosphatidylcholine (PC) is the most abundant phospholipid in eukaryotic membranes, yet how cells sense and regulate its levels in vivo remains unclear. Here we show that...

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Autores principales: Haider, Afreen, Wei, Yu-Chen, Lim, Koini, Barbosa, Antonio D., Liu, Che-Hsiung, Weber, Ursula, Mlodzik, Marek, Oras, Kadri, Collier, Simon, Hussain, M. Mahmood, Dong, Liang, Patel, Satish, Alvarez-Guaita, Anna, Saudek, Vladimir, Jenkins, Benjamin J., Koulman, Albert, Dymond, Marcus K., Hardie, Roger C., Siniossoglou, Symeon, Savage, David B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5971203/
https://www.ncbi.nlm.nih.gov/pubmed/29754800
http://dx.doi.org/10.1016/j.devcel.2018.04.012
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author Haider, Afreen
Wei, Yu-Chen
Lim, Koini
Barbosa, Antonio D.
Liu, Che-Hsiung
Weber, Ursula
Mlodzik, Marek
Oras, Kadri
Collier, Simon
Hussain, M. Mahmood
Dong, Liang
Patel, Satish
Alvarez-Guaita, Anna
Saudek, Vladimir
Jenkins, Benjamin J.
Koulman, Albert
Dymond, Marcus K.
Hardie, Roger C.
Siniossoglou, Symeon
Savage, David B.
author_facet Haider, Afreen
Wei, Yu-Chen
Lim, Koini
Barbosa, Antonio D.
Liu, Che-Hsiung
Weber, Ursula
Mlodzik, Marek
Oras, Kadri
Collier, Simon
Hussain, M. Mahmood
Dong, Liang
Patel, Satish
Alvarez-Guaita, Anna
Saudek, Vladimir
Jenkins, Benjamin J.
Koulman, Albert
Dymond, Marcus K.
Hardie, Roger C.
Siniossoglou, Symeon
Savage, David B.
author_sort Haider, Afreen
collection PubMed
description Cell and organelle membranes consist of a complex mixture of phospholipids (PLs) that determine their size, shape, and function. Phosphatidylcholine (PC) is the most abundant phospholipid in eukaryotic membranes, yet how cells sense and regulate its levels in vivo remains unclear. Here we show that PCYT1A, the rate-limiting enzyme of PC synthesis, is intranuclear and re-locates to the nuclear membrane in response to the need for membrane PL synthesis in yeast, fly, and mammalian cells. By aligning imaging with lipidomic analysis and data-driven modeling, we demonstrate that yeast PCYT1A membrane association correlates with membrane stored curvature elastic stress estimates. Furthermore, this process occurs inside the nucleus, although nuclear localization signal mutants can compensate for the loss of endogenous PCYT1A in yeast and in fly photoreceptors. These data suggest an ancient mechanism by which nucleoplasmic PCYT1A senses surface PL packing defects on the inner nuclear membrane to control PC homeostasis.
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spelling pubmed-59712032018-06-01 PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress Haider, Afreen Wei, Yu-Chen Lim, Koini Barbosa, Antonio D. Liu, Che-Hsiung Weber, Ursula Mlodzik, Marek Oras, Kadri Collier, Simon Hussain, M. Mahmood Dong, Liang Patel, Satish Alvarez-Guaita, Anna Saudek, Vladimir Jenkins, Benjamin J. Koulman, Albert Dymond, Marcus K. Hardie, Roger C. Siniossoglou, Symeon Savage, David B. Dev Cell Article Cell and organelle membranes consist of a complex mixture of phospholipids (PLs) that determine their size, shape, and function. Phosphatidylcholine (PC) is the most abundant phospholipid in eukaryotic membranes, yet how cells sense and regulate its levels in vivo remains unclear. Here we show that PCYT1A, the rate-limiting enzyme of PC synthesis, is intranuclear and re-locates to the nuclear membrane in response to the need for membrane PL synthesis in yeast, fly, and mammalian cells. By aligning imaging with lipidomic analysis and data-driven modeling, we demonstrate that yeast PCYT1A membrane association correlates with membrane stored curvature elastic stress estimates. Furthermore, this process occurs inside the nucleus, although nuclear localization signal mutants can compensate for the loss of endogenous PCYT1A in yeast and in fly photoreceptors. These data suggest an ancient mechanism by which nucleoplasmic PCYT1A senses surface PL packing defects on the inner nuclear membrane to control PC homeostasis. Cell Press 2018-05-21 /pmc/articles/PMC5971203/ /pubmed/29754800 http://dx.doi.org/10.1016/j.devcel.2018.04.012 Text en © 2018 The Authors http://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
Haider, Afreen
Wei, Yu-Chen
Lim, Koini
Barbosa, Antonio D.
Liu, Che-Hsiung
Weber, Ursula
Mlodzik, Marek
Oras, Kadri
Collier, Simon
Hussain, M. Mahmood
Dong, Liang
Patel, Satish
Alvarez-Guaita, Anna
Saudek, Vladimir
Jenkins, Benjamin J.
Koulman, Albert
Dymond, Marcus K.
Hardie, Roger C.
Siniossoglou, Symeon
Savage, David B.
PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title_full PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title_fullStr PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title_full_unstemmed PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title_short PCYT1A Regulates Phosphatidylcholine Homeostasis from the Inner Nuclear Membrane in Response to Membrane Stored Curvature Elastic Stress
title_sort pcyt1a regulates phosphatidylcholine homeostasis from the inner nuclear membrane in response to membrane stored curvature elastic stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5971203/
https://www.ncbi.nlm.nih.gov/pubmed/29754800
http://dx.doi.org/10.1016/j.devcel.2018.04.012
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