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Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development

Trisomy 21, the genetic cause of Down syndrome, disrupts primary cilia formation and function, in part through elevated Pericentrin, a centrosome protein encoded on chromosome 21. Yet how trisomy 21 and elevated Pericentrin disrupt cilia-related molecules and pathways, and the in vivo phenotypic rel...

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Autores principales: Jewett, Cayla E, McCurdy, Bailey L, O'Toole, Eileen T, Stemm-Wolf, Alexander J, Given, Katherine S, Lin, Carrie H, Olsen, Valerie, Martin, Whitney, Reinholdt, Laura, Espinosa, Joaquín M, Sullivan, Kelly D, Macklin, Wendy B, Prekeris, Rytis, Pearson, Chad G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851619/
https://www.ncbi.nlm.nih.gov/pubmed/36656118
http://dx.doi.org/10.7554/eLife.78202
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author Jewett, Cayla E
McCurdy, Bailey L
O'Toole, Eileen T
Stemm-Wolf, Alexander J
Given, Katherine S
Lin, Carrie H
Olsen, Valerie
Martin, Whitney
Reinholdt, Laura
Espinosa, Joaquín M
Sullivan, Kelly D
Macklin, Wendy B
Prekeris, Rytis
Pearson, Chad G
author_facet Jewett, Cayla E
McCurdy, Bailey L
O'Toole, Eileen T
Stemm-Wolf, Alexander J
Given, Katherine S
Lin, Carrie H
Olsen, Valerie
Martin, Whitney
Reinholdt, Laura
Espinosa, Joaquín M
Sullivan, Kelly D
Macklin, Wendy B
Prekeris, Rytis
Pearson, Chad G
author_sort Jewett, Cayla E
collection PubMed
description Trisomy 21, the genetic cause of Down syndrome, disrupts primary cilia formation and function, in part through elevated Pericentrin, a centrosome protein encoded on chromosome 21. Yet how trisomy 21 and elevated Pericentrin disrupt cilia-related molecules and pathways, and the in vivo phenotypic relevance remain unclear. Utilizing ciliogenesis time course experiments combined with light microscopy and electron tomography, we reveal that chromosome 21 polyploidy elevates Pericentrin and microtubules away from the centrosome that corral MyosinVA and EHD1, delaying ciliary membrane delivery and mother centriole uncapping essential for ciliogenesis. If given enough time, trisomy 21 cells eventually ciliate, but these ciliated cells demonstrate persistent trafficking defects that reduce transition zone protein localization and decrease sonic hedgehog signaling in direct anticorrelation with Pericentrin levels. Consistent with cultured trisomy 21 cells, a mouse model of Down syndrome with elevated Pericentrin has fewer primary cilia in cerebellar granule neuron progenitors and thinner external granular layers at P4. Our work reveals that elevated Pericentrin from trisomy 21 disrupts multiple early steps of ciliogenesis and creates persistent trafficking defects in ciliated cells. This pericentrosomal crowding mechanism results in signaling deficiencies consistent with the neurological phenotypes found in individuals with Down syndrome.
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spelling pubmed-98516192023-01-20 Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development Jewett, Cayla E McCurdy, Bailey L O'Toole, Eileen T Stemm-Wolf, Alexander J Given, Katherine S Lin, Carrie H Olsen, Valerie Martin, Whitney Reinholdt, Laura Espinosa, Joaquín M Sullivan, Kelly D Macklin, Wendy B Prekeris, Rytis Pearson, Chad G eLife Cell Biology Trisomy 21, the genetic cause of Down syndrome, disrupts primary cilia formation and function, in part through elevated Pericentrin, a centrosome protein encoded on chromosome 21. Yet how trisomy 21 and elevated Pericentrin disrupt cilia-related molecules and pathways, and the in vivo phenotypic relevance remain unclear. Utilizing ciliogenesis time course experiments combined with light microscopy and electron tomography, we reveal that chromosome 21 polyploidy elevates Pericentrin and microtubules away from the centrosome that corral MyosinVA and EHD1, delaying ciliary membrane delivery and mother centriole uncapping essential for ciliogenesis. If given enough time, trisomy 21 cells eventually ciliate, but these ciliated cells demonstrate persistent trafficking defects that reduce transition zone protein localization and decrease sonic hedgehog signaling in direct anticorrelation with Pericentrin levels. Consistent with cultured trisomy 21 cells, a mouse model of Down syndrome with elevated Pericentrin has fewer primary cilia in cerebellar granule neuron progenitors and thinner external granular layers at P4. Our work reveals that elevated Pericentrin from trisomy 21 disrupts multiple early steps of ciliogenesis and creates persistent trafficking defects in ciliated cells. This pericentrosomal crowding mechanism results in signaling deficiencies consistent with the neurological phenotypes found in individuals with Down syndrome. eLife Sciences Publications, Ltd 2023-01-19 /pmc/articles/PMC9851619/ /pubmed/36656118 http://dx.doi.org/10.7554/eLife.78202 Text en © 2023, Jewett 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
Jewett, Cayla E
McCurdy, Bailey L
O'Toole, Eileen T
Stemm-Wolf, Alexander J
Given, Katherine S
Lin, Carrie H
Olsen, Valerie
Martin, Whitney
Reinholdt, Laura
Espinosa, Joaquín M
Sullivan, Kelly D
Macklin, Wendy B
Prekeris, Rytis
Pearson, Chad G
Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title_full Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title_fullStr Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title_full_unstemmed Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title_short Trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
title_sort trisomy 21 induces pericentrosomal crowding delaying primary ciliogenesis and mouse cerebellar development
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851619/
https://www.ncbi.nlm.nih.gov/pubmed/36656118
http://dx.doi.org/10.7554/eLife.78202
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