Identification of Trans-Golgi Network Proteins in Arabidopsis thaliana Root Tissue

被引:55
作者
Groen, Arnoud J. [1 ]
Sancho-Andres, Gloria [2 ]
Breckels, Lisa M. [1 ]
Gatto, Laurent [1 ]
Aniento, Fernando [2 ]
Lilley, Kathryn S. [1 ]
机构
[1] Univ Cambridge, Cambridge Syst Biol Ctr, Cambridge Ctr Prote, Dept Biochem, Cambridge CB2 1GA, England
[2] Univ Valencia, Fac Farm, Dept Bioquim & Biol Mol, E-46010 Valencia, Spain
基金
英国生物技术与生命科学研究理事会;
关键词
trans-Golgi network; LOPIT; Arabidopsis thaliana; immunoisolation; phenoDisco; machine learning; organelle proteomics; SUBCELLULAR-LOCALIZATION; MASS-SPECTROMETRY; POST-GOLGI; PREVACUOLAR COMPARTMENT; ORGANELLE PROTEOME; MEMBRANE-PROTEINS; GAMMA-SECRETASE; RAB GTPASE; IN-VIVO; PLANT;
D O I
10.1021/pr4008464
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Knowledge of protein subcellular localization assists in the elucidation of protein function and understanding of different biological mechanisms that occur at discrete subcellular niches. Organelle-centric proteomics enables localization of thousands of proteins simultaneously. Although such techniques have successfully allowed organelle protein catalogues to be achieved, they rely on the purification or significant enrichment of the organelle of interest, which is not achievable for many organelles. Incomplete separation of organelles leads to false discoveries, with erroneous assignments. Proteomics methods that measure the distribution patterns of specific organelle markers along density gradients are able to assign proteins of unknown localization based on comigration with known organelle markers, without the need for organelle purification. These methods are greatly enhanced when coupled to sophisticated computational tools. Here we apply and compare multiple approaches to establish a high-confidence data set of Arabidopsis root tissue trans-Golgi network (TCN) proteins. The method employed involves immunoisolations of the TGN, coupled to probability-based organelle proteomics techniques. Specifically, the technique known as LOPIT (localization of organelle protein by isotope tagging), couples density centrifugation with quantitative mass-spectometry-based proteomics using isobaric labeling and targeted methods with semisupervised machine learning methods. We demonstrate that while the immunoisolation method gives rise to a significant data set, the approach is unable to distinguish cargo proteins and persistent contaminants from full-time residents of the TGN. The LOPIT approach, however, returns information about many subcellular niches simultaneously and the steady-state location of proteins. Importantly, therefore, it is able to dissect proteins present in more than one organelle and cargo proteins en route to other cellular destinations from proteins whose steady-state location favors the TGN. Using this approach, we present a robust list of Arabidopsis TGN proteins.
引用
收藏
页码:763 / 776
页数:14
相关论文
共 69 条
[31]   Bi-directional protein transport between the ER and Golgi [J].
Lee, MCS ;
Miller, EA ;
Goldberg, J ;
Orci, L ;
Schekman, R .
ANNUAL REVIEW OF CELL AND DEVELOPMENTAL BIOLOGY, 2004, 20 :87-123
[32]   BAK1, an Arabidopsis LRR receptor-like protein kinase, interacts with BRI1 and modulates brassinosteroid signaling [J].
Li, J ;
Wen, JQ ;
Lease, KA ;
Doke, JT ;
Tax, FE ;
Walker, JC .
CELL, 2002, 110 (02) :213-222
[33]   Methods of quantitative proteomics and their application to plant organelle characterization [J].
Lilley, KS ;
Dupree, P .
JOURNAL OF EXPERIMENTAL BOTANY, 2006, 57 (07) :1493-1499
[34]  
Nelson N, 2000, J EXP BIOL, V203, P89
[35]   Sorting of plant vacuolar proteins is initiated in the ER [J].
Niemes, Silke ;
Labs, Mathias ;
Scheuring, David ;
Krueger, Falco ;
Langhans, Markus ;
Jesenofsky, Barbara ;
Robinson, David G. ;
Pimpl, Peter .
PLANT JOURNAL, 2010, 62 (04) :601-614
[36]   Putative Glycosyltransferases and Other Plant Golgi Apparatus Proteins Are Revealed by LOPIT Proteomics [J].
Nikolovski, Nino ;
Rubtsov, Denis ;
Segura, Marcelo P. ;
Miles, Godfrey P. ;
Stevens, Tim J. ;
Dunkley, Tom P. J. ;
Munro, Sean ;
Lilley, Kathryn S. ;
Dupree, Paul .
PLANT PHYSIOLOGY, 2012, 160 (02) :1037-1051
[37]   The proteolytic processing of seed storage proteins in Arabidopsis embryo cells starts in the multivesicular bodies [J].
Otegui, Marisa S. ;
Herder, Rachel ;
Schulze, Jan ;
Jung, Rudolf ;
Staehelin, L. Andrew .
PLANT CELL, 2006, 18 (10) :2567-2581
[38]   Membrane traffic and fusion at post-Golgi compartments [J].
Park, Misoon ;
Juergens, Gerd .
FRONTIERS IN PLANT SCIENCE, 2012, 2
[39]   Isolation and Proteomic Characterization of the Arabidopsis Golgi Defines Functional and Novel Components Involved in Plant Cell Wall Biosynthesis [J].
Parsons, Harriet T. ;
Christiansen, Katy ;
Knierim, Bernhard ;
Carroll, Andrew ;
Ito, Jun ;
Batth, Tanveer S. ;
Smith-Moritz, Andreia M. ;
Morrison, Stephanie ;
McInerney, Peter ;
Hadi, Masood Z. ;
Auer, Manfred ;
Mukhopadhyay, Aindrila ;
Petzold, Christopher J. ;
Scheller, Henrik V. ;
Loque, Dominique ;
Heazlewood, Joshua L. .
PLANT PHYSIOLOGY, 2012, 159 (01) :12-26
[40]   Protein quality control along the route to the plant vacuole [J].
Pedrazzini, E ;
Giovinazzo, G ;
Bielli, A ;
deVirgilio, M ;
Frigerio, L ;
Pesca, M ;
Faoro, F ;
Bollini, R ;
Ceriotti, A ;
Vitale, A .
PLANT CELL, 1997, 9 (10) :1869-1880