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Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules

We describe MIP-1 and MIP-2, novel paralogous C. elegans germ granule components that interact with the intrinsically disordered MEG-3 protein. These proteins promote P granule condensation, form granules independently of MEG-3 in the postembryonic germ line, and balance each other in regulating P g...

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Autores principales: Cipriani, Patricia Giselle, Bay, Olivia, Zinno, John, Gutwein, Michelle, Gan, Hin Hark, Mayya, Vinay K, Chung, George, Chen, Jia-Xuan, Fahs, Hala, Guan, Yu, Duchaine, Thomas F, Selbach, Matthias, Piano, Fabio, Gunsalus, Kristin C
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8331183/
https://www.ncbi.nlm.nih.gov/pubmed/34223818
http://dx.doi.org/10.7554/eLife.60833
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author Cipriani, Patricia Giselle
Bay, Olivia
Zinno, John
Gutwein, Michelle
Gan, Hin Hark
Mayya, Vinay K
Chung, George
Chen, Jia-Xuan
Fahs, Hala
Guan, Yu
Duchaine, Thomas F
Selbach, Matthias
Piano, Fabio
Gunsalus, Kristin C
author_facet Cipriani, Patricia Giselle
Bay, Olivia
Zinno, John
Gutwein, Michelle
Gan, Hin Hark
Mayya, Vinay K
Chung, George
Chen, Jia-Xuan
Fahs, Hala
Guan, Yu
Duchaine, Thomas F
Selbach, Matthias
Piano, Fabio
Gunsalus, Kristin C
author_sort Cipriani, Patricia Giselle
collection PubMed
description We describe MIP-1 and MIP-2, novel paralogous C. elegans germ granule components that interact with the intrinsically disordered MEG-3 protein. These proteins promote P granule condensation, form granules independently of MEG-3 in the postembryonic germ line, and balance each other in regulating P granule growth and localization. MIP-1 and MIP-2 each contain two LOTUS domains and intrinsically disordered regions and form homo- and heterodimers. They bind and anchor the Vasa homolog GLH-1 within P granules and are jointly required for coalescence of MEG-3, GLH-1, and PGL proteins. Animals lacking MIP-1 and MIP-2 show temperature-sensitive embryonic lethality, sterility, and mortal germ lines. Germline phenotypes include defects in stem cell self-renewal, meiotic progression, and gamete differentiation. We propose that these proteins serve as scaffolds and organizing centers for ribonucleoprotein networks within P granules that help recruit and balance essential RNA processing machinery to regulate key developmental transitions in the germ line.
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spelling pubmed-83311832021-08-04 Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules Cipriani, Patricia Giselle Bay, Olivia Zinno, John Gutwein, Michelle Gan, Hin Hark Mayya, Vinay K Chung, George Chen, Jia-Xuan Fahs, Hala Guan, Yu Duchaine, Thomas F Selbach, Matthias Piano, Fabio Gunsalus, Kristin C eLife Cell Biology We describe MIP-1 and MIP-2, novel paralogous C. elegans germ granule components that interact with the intrinsically disordered MEG-3 protein. These proteins promote P granule condensation, form granules independently of MEG-3 in the postembryonic germ line, and balance each other in regulating P granule growth and localization. MIP-1 and MIP-2 each contain two LOTUS domains and intrinsically disordered regions and form homo- and heterodimers. They bind and anchor the Vasa homolog GLH-1 within P granules and are jointly required for coalescence of MEG-3, GLH-1, and PGL proteins. Animals lacking MIP-1 and MIP-2 show temperature-sensitive embryonic lethality, sterility, and mortal germ lines. Germline phenotypes include defects in stem cell self-renewal, meiotic progression, and gamete differentiation. We propose that these proteins serve as scaffolds and organizing centers for ribonucleoprotein networks within P granules that help recruit and balance essential RNA processing machinery to regulate key developmental transitions in the germ line. eLife Sciences Publications, Ltd 2021-07-05 /pmc/articles/PMC8331183/ /pubmed/34223818 http://dx.doi.org/10.7554/eLife.60833 Text en © 2021, Cipriani et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Cipriani, Patricia Giselle
Bay, Olivia
Zinno, John
Gutwein, Michelle
Gan, Hin Hark
Mayya, Vinay K
Chung, George
Chen, Jia-Xuan
Fahs, Hala
Guan, Yu
Duchaine, Thomas F
Selbach, Matthias
Piano, Fabio
Gunsalus, Kristin C
Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title_full Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title_fullStr Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title_full_unstemmed Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title_short Novel LOTUS-domain proteins are organizational hubs that recruit C. elegans Vasa to germ granules
title_sort novel lotus-domain proteins are organizational hubs that recruit c. elegans vasa to germ granules
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8331183/
https://www.ncbi.nlm.nih.gov/pubmed/34223818
http://dx.doi.org/10.7554/eLife.60833
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