Proteomic analysis of cerebrospinal fluid extracellular vesicles: A comprehensive dataset

被引:206
作者
Chiasserini, Davide [1 ]
van Weering, Jan R. T. [2 ]
Piersma, Sander R. [1 ]
Pham, Thang V. [1 ]
Malekzadeh, Arjan [3 ,4 ]
Teunissen, Charlotte E. [3 ,4 ]
de Wit, Heidi [2 ]
Jimenez, Connie R. [1 ]
机构
[1] Vrije Univ Amsterdam Med Ctr, Dept Med Oncol, OncoProte Lab, NL-1081 HV Amsterdam, Netherlands
[2] Vrije Univ Amsterdam Med Ctr, VU Univ Amsterdam, Neurosci Campus Amsterdam, Ctr Neurogen & Cognit Res,Dept Funct Genorn & Cli, NL-1081 HV Amsterdam, Netherlands
[3] Vrije Univ Amsterdam Med Ctr, Dept Clin Chem, Neurochem Lab, NL-1081 HV Amsterdam, Netherlands
[4] Vrije Univ Amsterdam Med Ctr, Dept Clin Chem, Biobank, NL-1081 HV Amsterdam, Netherlands
关键词
Cerebrospinal fluid; Extracellular vesicles; Exosomes; Proteomics; Mass spectrometry; Neurological diseases; ALZHEIMERS ASSOCIATION WORKGROUPS; ALPHA-SYNUCLEIN; DIAGNOSTIC GUIDELINES; NATIONAL INSTITUTE; EXOSOMES; DISEASE; PROTEIN; DJ-1; IDENTIFICATION; MICROVESICLES;
D O I
10.1016/j.jprot.2014.04.028
中图分类号
Q5 [生物化学];
学科分类号
070307 [化学生物学];
摘要
Extracellular vesicles (EVs) are present in human cerebrospinal fluid (CSF), yet little is known about their protein composition. The aim of this study is to provide a comprehensive analysis of the proteome of CSF EVs by electron microscopy and high resolution tandem mass spectrometry (MS/MS) in conjunction with bioinformatics. We report an extensive catalog of 1315 proteins identified in EVs isolated from two different CSF pools by ultracentrifugation, including 230 novel EV proteins. Out of 1315 proteins, 760 were identified in both CSF pools and about 30% of those were also quantitatively enriched in the EV fraction versus the soluble CSF fraction. The proteome of CSF EVs was enriched in exosomal markers such as alix and syntenin-1, heat shock proteins and tetraspanins and contained a high proportion of brain-derived proteins (n = 373). Interestingly, several known biomarkers for neurodegenerative diseases such as the amyloid precursor protein, the prion protein and DJ-1 were identified in the EV fractions. Our dataset represents the first comprehensive inventory of the EV proteome in CSF, underscoring the biomarker potential of this organelle. Further comparative studies on CSF EVs isolated from patients diagnosed with neurological disorders are warranted. Data are available via ProteomeXchange with identifier PXD000608. Biological significance In this study we analyzed the protein composition of extracellular vesicles isolated from pooled samples of human cerebrospinal fluid (CSF). CSF is a colorless fluid surrounding the brain and the spinal cord, important for the physiology of the central nervous system, ensuing mechanical protection, regulation of brain blood flow and elimination of byproducts of the brain. Since brain (patho)physiology is reflected in CSF, this biological fluid represents an ideal source of soluble and vesicle-based biomarkers for neurological diseases. Here we confirm the presence of exosome-like extracellular vesicles in CSF, underscoring a potential role in the physiology of the brain. These extracellular vesicles provide a rich source of candidate biomarkers, representing a brain "fluid biopsy". Most interestingly, the involvement of extracellular vesicles in transferring toxic proteins such as alpha-synuclein and beta-amyloid has been postulated as one of the mechanisms involved in the spreading of neurodegeneration to different brain areas. In line with this, we show that human CSF extracellular vesicles contain prionogenic proteins such as the amyloid precursor protein and the prion protein. Delineating the protein composition of extracellular vesicles in CSF is a first and crucial step to comprehend their origin and their function in the central nervous system and to establish their biomarker potential. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:191 / 204
页数:14
相关论文
共 63 条
[21]
Proteomic Analysis of Human Parotid Gland Exosomes by Multidimensional Protein Identification Technology (MudPIT) [J].
Gonzalez-Begne, Mireya ;
Lu, Bingwen ;
Han, Xuemei ;
Hagen, Fred K. ;
Hand, Arthur R. ;
Melvin, James E. ;
Yates, John R., III .
JOURNAL OF PROTEOME RESEARCH, 2009, 8 (03) :1304-1314
[22]
Method for isolation and molecular characterization of extracellular microvesicles released from brain endothelial cells [J].
Haqqani A.S. ;
Delaney C.E. ;
Tremblay T.-L. ;
Sodja C. ;
Sandhu J.K. ;
Stanimirovic D.B. .
Fluids and Barriers of the CNS, 10 (1)
[23]
Harrington MG, 2009, FLUIDS BARRIERS CNS, V6, DOI 10.1186/1743-8454-6-10
[24]
DJ-1 and α-synuclein in human cerebrospinal fluid as biomarkers of Parkinson's disease [J].
Hong, Zhen ;
Shi, Min ;
Chung, Kathryn A. ;
Quinn, Joseph F. ;
Peskind, Elaine R. ;
Galasko, Douglas ;
Jankovic, Joseph ;
Zabetian, Cyrus P. ;
Leverenz, James B. ;
Baird, Geoffrey ;
Montine, Thomas J. ;
Hancock, Aneeka M. ;
Hwang, Hyejin ;
Pan, Catherine ;
Bradner, Joshua ;
Kang, Un J. ;
Jensen, Poul H. ;
Zhang, Jing .
BRAIN, 2010, 133 :713-726
[25]
Wnt3a induces exosome secretion from primary cultured rat microglia [J].
Hooper, Claudie ;
Sainz-Fuertes, Ricardo ;
Lynham, Steven ;
Hye, Abdul ;
Killick, Richard ;
Warley, Alice ;
Bolondi, Cecilia ;
Pocock, Jennifer ;
Lovestone, Simon .
BMC NEUROSCIENCE, 2012, 13
[26]
Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources [J].
Huang, Da Wei ;
Sherman, Brad T. ;
Lempicki, Richard A. .
NATURE PROTOCOLS, 2009, 4 (01) :44-57
[27]
A Paravascular Pathway Facilitates CSF Flow Through the Brain Parenchyma and the Clearance of Interstitial Solutes, Including Amyloid β [J].
Iliff, Jeffrey J. ;
Wang, Minghuan ;
Liao, Yonghong ;
Plogg, Benjamin A. ;
Peng, Weiguo ;
Gundersen, Georg A. ;
Benveniste, Helene ;
Vates, G. Edward ;
Deane, Rashid ;
Goldman, Steven A. ;
Nagelhus, Erlend A. ;
Nedergaard, Maiken .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (147)
[28]
Vesiclepedia: A Compendium for Extracellular Vesicles with Continuous Community Annotation [J].
Kalra, Hina ;
Simpson, Richard J. ;
Ji, Hong ;
Aikawa, Elena ;
Altevogt, Peter ;
Askenase, Philip ;
Bond, Vincent C. ;
Borras, Francesc E. ;
Breakefield, Xandra ;
Budnik, Vivian ;
Buzas, Edit ;
Camussi, Giovanni ;
Clayton, Aled ;
Cocucci, Emanuele ;
Falcon-Perez, Juan M. ;
Gabrielsson, Susanne ;
Gho, Yong Song ;
Gupta, Dwijendra ;
Harsha, H. C. ;
Hendrix, An ;
Hill, Andrew F. ;
Inal, Jameel M. ;
Jenster, Guido ;
Kraemer-Albers, Eva-Maria ;
Lim, Sai Kiang ;
Llorente, Alicia ;
Lotvall, Jan ;
Marcilla, Antonio ;
Mincheva-Nilsson, Lucia ;
Nazarenko, Irina ;
Nieuwland, Rienk ;
Nolte-'t Hoen, Esther N. M. ;
Pandey, Akhilesh ;
Patel, Tushar ;
Piper, Melissa G. ;
Pluchino, Stefano ;
Prasad, T. S. Keshava ;
Rajendran, Lawrence ;
Raposo, Graca ;
Record, Michel ;
Reid, Gavin E. ;
Sanchez-Madrid, Francisco ;
Schiffelers, Raymond M. ;
Siljander, Pia ;
Stensballe, Allan ;
Stoorvogel, Willem ;
Taylor, Douglas ;
Thery, Clotilde ;
Valadi, Hadi ;
van Balkom, Bas W. M. .
PLOS BIOLOGY, 2012, 10 (12)
[29]
Mutations in prion-like domains in hnRNPA2B1 and hnRNPA1 cause multisystem proteinopathy and ALS [J].
Kim, Hong Joo ;
Kim, Nam Chul ;
Wang, Yong-Dong ;
Scarborough, Emily A. ;
Moore, Jennifer ;
Diaz, Zamia ;
MacLea, Kyle S. ;
Freibaum, Brian ;
Li, Songqing ;
Molliex, Amandine ;
Kanagaraj, Anderson P. ;
Carter, Robert ;
Boylan, Kevin B. ;
Wojtas, Aleksandra M. ;
Rademakers, Rosa ;
Pinkus, Jack L. ;
Greenberg, Steven A. ;
Trojanowski, John Q. ;
Traynor, Bryan J. ;
Smith, Bradley N. ;
Topp, Simon ;
Gkazi, Athina-Soragia ;
Miller, Jack ;
Shaw, Christopher E. ;
Kottlors, Michael ;
Kirschner, Janbernd ;
Pestronk, Alan ;
Li, Yun R. ;
Ford, Alice Flynn ;
Gitler, Aaron D. ;
Benatar, Michael ;
King, Oliver D. ;
Kimonis, Virginia E. ;
Ross, Eric D. ;
Weihl, Conrad C. ;
Shorter, James ;
Taylor, J. Paul .
NATURE, 2013, 495 (7442) :467-+
[30]
Localization of flotillins in human brain and their accumulation with the progression of Alzheimer's disease pathology [J].
Kokubo, H ;
Lemere, CA ;
Yamaguchi, H .
NEUROSCIENCE LETTERS, 2000, 290 (02) :93-96