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

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          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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          Most cited references67

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          Far-field optical nanoscopy.

          In 1873, Ernst Abbe discovered what was to become a well-known paradigm: the inability of a lens-based optical microscope to discern details that are closer together than half of the wavelength of light. However, for its most popular imaging mode, fluorescence microscopy, the diffraction barrier is crumbling. Here, I discuss the physical concepts that have pushed fluorescence microscopy to the nanoscale, once the prerogative of electron and scanning probe microscopes. Initial applications indicate that emergent far-field optical nanoscopy will have a strong impact in the life sciences and in other areas benefiting from nanoscale visualization.
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            Proteomic characterization of the human centrosome by protein correlation profiling.

            The centrosome is the major microtubule-organizing centre of animal cells and through its influence on the cytoskeleton is involved in cell shape, polarity and motility. It also has a crucial function in cell division because it determines the poles of the mitotic spindle that segregates duplicated chromosomes between dividing cells. Despite the importance of this organelle to cell biology and more than 100 years of study, many aspects of its function remain enigmatic and its structure and composition are still largely unknown. We performed a mass-spectrometry-based proteomic analysis of human centrosomes in the interphase of the cell cycle by quantitatively profiling hundreds of proteins across several centrifugation fractions. True centrosomal proteins were revealed by both correlation with already known centrosomal proteins and in vivo localization. We identified and validated 23 novel components and identified 41 likely candidates as well as the vast majority of the known centrosomal proteins in a large background of nonspecific proteins. Protein correlation profiling permits the analysis of any multiprotein complex that can be enriched by fractionation but not purified to homogeneity.
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              Breaking the diffraction barrier: super-resolution imaging of cells.

              Anyone who has used a light microscope has wished that its resolution could be a little better. Now, after centuries of gradual improvements, fluorescence microscopy has made a quantum leap in its resolving power due, in large part, to advancements over the past several years in a new area of research called super-resolution fluorescence microscopy. In this Primer, we explain the principles of various super-resolution approaches, such as STED, (S)SIM, and STORM/(F)PALM. Then, we describe recent applications of super-resolution microscopy in cells, which demonstrate how these approaches are beginning to provide new insights into cell biology, microbiology, and neurobiology. Copyright © 2010 Elsevier Inc. All rights reserved.
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                Author and article information

                Journal
                Biol Open
                Biol Open
                biolopen
                bio
                Biology Open
                The Company of Biologists (Bidder Building, 140 Cowley Road, Cambridge, CB4 0DL, UK )
                2046-6390
                15 October 2012
                08 August 2012
                : 1
                : 10
                : 965-976
                Affiliations
                [1 ]Biozentrum, University of Basel , Klingelbergstrasse 50/70, CH-4056 Basel, Switzerland
                [2 ]Department of Biology and Center for Integrated Protein Science, Ludwig Maximilians University Munich , 82152 Planegg-Martinsried, Germany
                [* ]Present address: Department of Biochemistry, University of Oxford, South Parks Road, Oxford OX1 3QU, UK
                Author notes
                []Author for correspondence ( erich.nigg@ 123456unibas.ch )
                Article
                BIO20122337
                10.1242/bio.20122337
                3507176
                23213374
                0ee49f7d-b0bc-47dc-b6a0-ea693a73af4e
                © 2012. Published by The Company of Biologists Ltd

                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/).

                History
                : 19 June 2012
                : 3 July 2012
                Categories
                Research Article

                Life sciences
                plk4,3d-sim,centrosome,centriole,super-resolution microscopy
                Life sciences
                plk4, 3d-sim, centrosome, centriole, super-resolution microscopy

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