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3D-structured illumination microscopy provides novel insight into architecture of human centrosomes

Centrioles are essential for the formation of cilia and flagella. They also form the core of the centrosome, which organizes microtubule arrays important for cell shape, polarity, motility and division. Here, we have used super-resolution 3D-structured illumination microscopy to analyse the spatial...

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Autores principales: Sonnen, Katharina F., Schermelleh, Lothar, Leonhardt, Heinrich, Nigg, Erich A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507176/
https://www.ncbi.nlm.nih.gov/pubmed/23213374
http://dx.doi.org/10.1242/bio.20122337
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author Sonnen, Katharina F.
Schermelleh, Lothar
Leonhardt, Heinrich
Nigg, Erich A.
author_facet Sonnen, Katharina F.
Schermelleh, Lothar
Leonhardt, Heinrich
Nigg, Erich A.
author_sort Sonnen, Katharina F.
collection PubMed
description Centrioles are essential for the formation of cilia and flagella. They also form the core of the centrosome, which organizes microtubule arrays important for cell shape, polarity, motility and division. Here, we have used super-resolution 3D-structured illumination microscopy to analyse the spatial relationship of 18 centriole and pericentriolar matrix (PCM) components of human centrosomes at different cell cycle stages. During mitosis, PCM proteins formed extended networks with interspersed γ-Tubulin. During interphase, most proteins were arranged at specific distances from the walls of centrioles, resulting in ring staining, often with discernible density masses. Through use of site-specific antibodies, we found the C-terminus of Cep152 to be closer to centrioles than the N-terminus, illustrating the power of 3D-SIM to study protein disposition. Appendage proteins showed rings with multiple density masses, and the number of these masses was strongly reduced during mitosis. At the proximal end of centrioles, Sas-6 formed a dot at the site of daughter centriole assembly, consistent with its role in cartwheel formation. Plk4 and STIL co-localized with Sas-6, but Cep135 was associated mostly with mother centrioles. Remarkably, Plk4 formed a dot on the surface of the mother centriole before Sas-6 staining became detectable, indicating that Plk4 constitutes an early marker for the site of nascent centriole formation. Our study provides novel insights into the architecture of human centrosomes and illustrates the power of super-resolution microscopy in revealing the relative localization of centriole and PCM proteins in unprecedented detail.
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spelling pubmed-35071762012-12-04 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes Sonnen, Katharina F. Schermelleh, Lothar Leonhardt, Heinrich Nigg, Erich A. Biol Open Research Article Centrioles are essential for the formation of cilia and flagella. They also form the core of the centrosome, which organizes microtubule arrays important for cell shape, polarity, motility and division. Here, we have used super-resolution 3D-structured illumination microscopy to analyse the spatial relationship of 18 centriole and pericentriolar matrix (PCM) components of human centrosomes at different cell cycle stages. During mitosis, PCM proteins formed extended networks with interspersed γ-Tubulin. During interphase, most proteins were arranged at specific distances from the walls of centrioles, resulting in ring staining, often with discernible density masses. Through use of site-specific antibodies, we found the C-terminus of Cep152 to be closer to centrioles than the N-terminus, illustrating the power of 3D-SIM to study protein disposition. Appendage proteins showed rings with multiple density masses, and the number of these masses was strongly reduced during mitosis. At the proximal end of centrioles, Sas-6 formed a dot at the site of daughter centriole assembly, consistent with its role in cartwheel formation. Plk4 and STIL co-localized with Sas-6, but Cep135 was associated mostly with mother centrioles. Remarkably, Plk4 formed a dot on the surface of the mother centriole before Sas-6 staining became detectable, indicating that Plk4 constitutes an early marker for the site of nascent centriole formation. Our study provides novel insights into the architecture of human centrosomes and illustrates the power of super-resolution microscopy in revealing the relative localization of centriole and PCM proteins in unprecedented detail. The Company of Biologists 2012-08-08 /pmc/articles/PMC3507176/ /pubmed/23213374 http://dx.doi.org/10.1242/bio.20122337 Text en © 2012. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by-nc-sa/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial Share Alike License (http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Research Article
Sonnen, Katharina F.
Schermelleh, Lothar
Leonhardt, Heinrich
Nigg, Erich A.
3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title_full 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title_fullStr 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title_full_unstemmed 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title_short 3D-structured illumination microscopy provides novel insight into architecture of human centrosomes
title_sort 3d-structured illumination microscopy provides novel insight into architecture of human centrosomes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507176/
https://www.ncbi.nlm.nih.gov/pubmed/23213374
http://dx.doi.org/10.1242/bio.20122337
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