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In-depth mass spectrometric mapping of the human vitreous proteome

Mapping of proteins involved in normal eye functions is a prerequisite to identify pathological changes during eye disease processes. We therefore analysed the proteome of human vitreous by applying in-depth proteomic screening technologies. For ethical reasons human vitreous samples were obtained b...

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Autores principales: Aretz, Sebastian, Krohne, Tim U, Kammerer, Kerstin, Warnken, Uwe, Hotz-Wagenblatt, Agnes, Bergmann, Marion, Stanzel, Boris V, Kempf, Tore, Holz, Frank G, Schnölzer, Martina, Kopitz, Jürgen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3689628/
https://www.ncbi.nlm.nih.gov/pubmed/23688336
http://dx.doi.org/10.1186/1477-5956-11-22
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author Aretz, Sebastian
Krohne, Tim U
Kammerer, Kerstin
Warnken, Uwe
Hotz-Wagenblatt, Agnes
Bergmann, Marion
Stanzel, Boris V
Kempf, Tore
Holz, Frank G
Schnölzer, Martina
Kopitz, Jürgen
author_facet Aretz, Sebastian
Krohne, Tim U
Kammerer, Kerstin
Warnken, Uwe
Hotz-Wagenblatt, Agnes
Bergmann, Marion
Stanzel, Boris V
Kempf, Tore
Holz, Frank G
Schnölzer, Martina
Kopitz, Jürgen
author_sort Aretz, Sebastian
collection PubMed
description Mapping of proteins involved in normal eye functions is a prerequisite to identify pathological changes during eye disease processes. We therefore analysed the proteome of human vitreous by applying in-depth proteomic screening technologies. For ethical reasons human vitreous samples were obtained by vitrectomy from “surrogate normal patients” with epiretinal gliosis that is considered to constitute only negligible pathological vitreoretinal changes. We applied different protein prefractionation strategies including liquid phase isoelectric focussing, 1D SDS gel electrophoresis and a combination of both and compared the number of identified proteins obtained by the respective method. Liquid phase isoelectric focussing followed by SDS gel electrophoresis increased the number of identified proteins by a factor of five compared to the analysis of crude unseparated human vitreous. Depending on the prefractionation method proteins were subjected to trypsin digestion either in-gel or in solution and the resulting peptides were analysed on a UPLC system coupled online to an LTQ Orbitrap XL mass spectrometer. The obtained mass spectra were searched against the SwissProt database using the Mascot search engine. Bioinformatics tools were used to annotate known biological functions to the detected proteins. Following this strategy we examined the vitreous proteomes of three individuals and identified 1111 unique proteins. Besides structural, transport and binding proteins, we detected 261 proteins with known enzymatic activity, 51 proteases, 35 protease inhibitors, 35 members of complement and coagulation cascades, 15 peptide hormones, 5 growth factors, 11 cytokines, 47 receptors, 30 proteins of visual perception, 91 proteins involved in apoptosis regulation and 265 proteins with signalling activity. This highly complex mixture strikingly differs from the human plasma proteome. Thus human vitreous fluid seems to be a unique body fluid. 262 unique proteins were detected which are present in all three patient samples indicating that these might represent the constitutive protein pattern of human vitreous. The presented catalogue of human vitreous proteins will enhance our understanding of physiological processes in the eye and provides the groundwork for future studies on pathological vitreous proteome changes.
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spelling pubmed-36896282013-06-22 In-depth mass spectrometric mapping of the human vitreous proteome Aretz, Sebastian Krohne, Tim U Kammerer, Kerstin Warnken, Uwe Hotz-Wagenblatt, Agnes Bergmann, Marion Stanzel, Boris V Kempf, Tore Holz, Frank G Schnölzer, Martina Kopitz, Jürgen Proteome Sci Research Mapping of proteins involved in normal eye functions is a prerequisite to identify pathological changes during eye disease processes. We therefore analysed the proteome of human vitreous by applying in-depth proteomic screening technologies. For ethical reasons human vitreous samples were obtained by vitrectomy from “surrogate normal patients” with epiretinal gliosis that is considered to constitute only negligible pathological vitreoretinal changes. We applied different protein prefractionation strategies including liquid phase isoelectric focussing, 1D SDS gel electrophoresis and a combination of both and compared the number of identified proteins obtained by the respective method. Liquid phase isoelectric focussing followed by SDS gel electrophoresis increased the number of identified proteins by a factor of five compared to the analysis of crude unseparated human vitreous. Depending on the prefractionation method proteins were subjected to trypsin digestion either in-gel or in solution and the resulting peptides were analysed on a UPLC system coupled online to an LTQ Orbitrap XL mass spectrometer. The obtained mass spectra were searched against the SwissProt database using the Mascot search engine. Bioinformatics tools were used to annotate known biological functions to the detected proteins. Following this strategy we examined the vitreous proteomes of three individuals and identified 1111 unique proteins. Besides structural, transport and binding proteins, we detected 261 proteins with known enzymatic activity, 51 proteases, 35 protease inhibitors, 35 members of complement and coagulation cascades, 15 peptide hormones, 5 growth factors, 11 cytokines, 47 receptors, 30 proteins of visual perception, 91 proteins involved in apoptosis regulation and 265 proteins with signalling activity. This highly complex mixture strikingly differs from the human plasma proteome. Thus human vitreous fluid seems to be a unique body fluid. 262 unique proteins were detected which are present in all three patient samples indicating that these might represent the constitutive protein pattern of human vitreous. The presented catalogue of human vitreous proteins will enhance our understanding of physiological processes in the eye and provides the groundwork for future studies on pathological vitreous proteome changes. BioMed Central 2013-05-20 /pmc/articles/PMC3689628/ /pubmed/23688336 http://dx.doi.org/10.1186/1477-5956-11-22 Text en Copyright © 2013 Aretz et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Aretz, Sebastian
Krohne, Tim U
Kammerer, Kerstin
Warnken, Uwe
Hotz-Wagenblatt, Agnes
Bergmann, Marion
Stanzel, Boris V
Kempf, Tore
Holz, Frank G
Schnölzer, Martina
Kopitz, Jürgen
In-depth mass spectrometric mapping of the human vitreous proteome
title In-depth mass spectrometric mapping of the human vitreous proteome
title_full In-depth mass spectrometric mapping of the human vitreous proteome
title_fullStr In-depth mass spectrometric mapping of the human vitreous proteome
title_full_unstemmed In-depth mass spectrometric mapping of the human vitreous proteome
title_short In-depth mass spectrometric mapping of the human vitreous proteome
title_sort in-depth mass spectrometric mapping of the human vitreous proteome
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3689628/
https://www.ncbi.nlm.nih.gov/pubmed/23688336
http://dx.doi.org/10.1186/1477-5956-11-22
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