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Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells

Neural stem cells (NSCs) divide asymmetrically to balance their self-renewal and differentiation, an imbalance in which can lead to NSC overgrowth and tumor formation. The functions of Parafibromin, a conserved tumor suppressor, in the nervous system are not established. Here, we demonstrate that Dr...

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Autores principales: Deng, Qiannan, Wang, Cheng, Koe, Chwee Tat, Heinen, Jan Peter, Tan, Ye Sing, Li, Song, Gonzalez, Cayetano, Sung, Wing-Kin, Wang, Hongyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9555638/
https://www.ncbi.nlm.nih.gov/pubmed/36223339
http://dx.doi.org/10.1371/journal.pbio.3001834
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author Deng, Qiannan
Wang, Cheng
Koe, Chwee Tat
Heinen, Jan Peter
Tan, Ye Sing
Li, Song
Gonzalez, Cayetano
Sung, Wing-Kin
Wang, Hongyan
author_facet Deng, Qiannan
Wang, Cheng
Koe, Chwee Tat
Heinen, Jan Peter
Tan, Ye Sing
Li, Song
Gonzalez, Cayetano
Sung, Wing-Kin
Wang, Hongyan
author_sort Deng, Qiannan
collection PubMed
description Neural stem cells (NSCs) divide asymmetrically to balance their self-renewal and differentiation, an imbalance in which can lead to NSC overgrowth and tumor formation. The functions of Parafibromin, a conserved tumor suppressor, in the nervous system are not established. Here, we demonstrate that Drosophila Parafibromin/Hyrax (Hyx) inhibits ectopic NSC formation by governing cell polarity. Hyx is essential for the asymmetric distribution and/or maintenance of polarity proteins. hyx depletion results in the symmetric division of NSCs, leading to the formation of supernumerary NSCs in the larval brain. Importantly, we show that human Parafibromin rescues the ectopic NSC phenotype in Drosophila hyx mutant brains. We have also discovered that Hyx is required for the proper formation of interphase microtubule-organizing center and mitotic spindles in NSCs. Moreover, Hyx is required for the proper localization of 2 key centrosomal proteins, Polo and AurA, and the microtubule-binding proteins Msps and D-TACC in dividing NSCs. Furthermore, Hyx directly regulates the polo and aurA expression in vitro. Finally, overexpression of polo and aurA could significantly suppress ectopic NSC formation and NSC polarity defects caused by hyx depletion. Our data support a model in which Hyx promotes the expression of polo and aurA in NSCs and, in turn, regulates cell polarity and centrosome/microtubule assembly. This new paradigm may be relevant to future studies on Parafibromin/HRPT2-associated cancers.
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spelling pubmed-95556382022-10-13 Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells Deng, Qiannan Wang, Cheng Koe, Chwee Tat Heinen, Jan Peter Tan, Ye Sing Li, Song Gonzalez, Cayetano Sung, Wing-Kin Wang, Hongyan PLoS Biol Research Article Neural stem cells (NSCs) divide asymmetrically to balance their self-renewal and differentiation, an imbalance in which can lead to NSC overgrowth and tumor formation. The functions of Parafibromin, a conserved tumor suppressor, in the nervous system are not established. Here, we demonstrate that Drosophila Parafibromin/Hyrax (Hyx) inhibits ectopic NSC formation by governing cell polarity. Hyx is essential for the asymmetric distribution and/or maintenance of polarity proteins. hyx depletion results in the symmetric division of NSCs, leading to the formation of supernumerary NSCs in the larval brain. Importantly, we show that human Parafibromin rescues the ectopic NSC phenotype in Drosophila hyx mutant brains. We have also discovered that Hyx is required for the proper formation of interphase microtubule-organizing center and mitotic spindles in NSCs. Moreover, Hyx is required for the proper localization of 2 key centrosomal proteins, Polo and AurA, and the microtubule-binding proteins Msps and D-TACC in dividing NSCs. Furthermore, Hyx directly regulates the polo and aurA expression in vitro. Finally, overexpression of polo and aurA could significantly suppress ectopic NSC formation and NSC polarity defects caused by hyx depletion. Our data support a model in which Hyx promotes the expression of polo and aurA in NSCs and, in turn, regulates cell polarity and centrosome/microtubule assembly. This new paradigm may be relevant to future studies on Parafibromin/HRPT2-associated cancers. Public Library of Science 2022-10-12 /pmc/articles/PMC9555638/ /pubmed/36223339 http://dx.doi.org/10.1371/journal.pbio.3001834 Text en © 2022 Deng 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
Deng, Qiannan
Wang, Cheng
Koe, Chwee Tat
Heinen, Jan Peter
Tan, Ye Sing
Li, Song
Gonzalez, Cayetano
Sung, Wing-Kin
Wang, Hongyan
Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title_full Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title_fullStr Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title_full_unstemmed Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title_short Parafibromin governs cell polarity and centrosome assembly in Drosophila neural stem cells
title_sort parafibromin governs cell polarity and centrosome assembly in drosophila neural stem cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9555638/
https://www.ncbi.nlm.nih.gov/pubmed/36223339
http://dx.doi.org/10.1371/journal.pbio.3001834
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