Reconstruction of the experimentally supported human protein interactome: what can we learn?

被引:25
作者
Klapa, Maria I. [1 ]
Tsafou, Kalliopi [1 ,2 ]
Theodoridis, Evangelos [3 ]
Tsakalidis, Athanasios [3 ]
Moschonas, Nicholas K. [2 ]
机构
[1] Fdn Res & Technol Hellas FORTH ICE HT, Metab Engn & Syst Biol Lab, Inst Chem Engn Sci, Patras, Greece
[2] Univ Patras, Sch Med, Dept Gen Biol, GR-26110 Patras, Greece
[3] Univ Patras, Comp Engn & Informat Dept, Patras, Greece
来源
BMC SYSTEMS BIOLOGY | 2013年 / 7卷
关键词
Human protein interactome analysis; Human protein-protein interaction (PPI) databases; Network biology; PPI network reconstruction; INTERACTION DATABASE; INTERACTION NETWORK; MAP; IDENTIFICATION; FEATURES; TOOLS;
D O I
10.1186/1752-0509-7-96
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Understanding the topology and dynamics of the human protein-protein interaction (PPI) network will significantly contribute to biomedical research, therefore its systematic reconstruction is required. Several meta-databases integrate source PPI datasets, but the protein node sets of their networks vary depending on the PPI data combined. Due to this inherent heterogeneity, the way in which the human PPI network expands via multiple dataset integration has not been comprehensively analyzed. We aim at assembling the human interactome in a global structured way and exploring it to gain insights of biological relevance. Results: First, we defined the UniProtKB manually reviewed human "complete" proteome as the reference protein-node set and then we mined five major source PPI datasets for direct PPIs exclusively between the reference proteins. We updated the protein and publication identifiers and normalized all PPIs to the UniProt identifier level. The reconstructed interactome covers approximately 60% of the human proteome and has a scale-free structure. No apparent differentiating gene functional classification characteristics were identified for the unrepresented proteins. The source dataset integration augments the network mainly in PPIs. Polyubiquitin emerged as the highest-degree node, but the inclusion of most of its identified PPIs may be reconsidered. The high number (>300) of connections of the subsequent fifteen proteins correlates well with their essential biological role. According to the power-law network structure, the unrepresented proteins should mainly have up to four connections with equally poorly-connected interactors. Conclusions: Reconstructing the human interactome based on the a priori definition of the protein nodes enabled us to identify the currently included part of the human "complete" proteome, and discuss the role of the proteins within the network topology with respect to their function. As the network expansion has to comply with the scale-free theory, we suggest that the core of the human interactome has essentially emerged. Thus, it could be employed in systems biology and biomedical research, despite the considerable number of currently unrepresented proteins. The latter are probably involved in specialized physiological conditions, justifying the scarcity of related PPI information, and their identification can assist in designing relevant functional experiments and targeted text mining algorithms.
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页数:13
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共 47 条
  • [1] Reorganizing the protein space at the Universal Protein Resource (UniProt)
    Apweiler, Rolf
    Martin, Maria Jesus
    O'Donovan, Claire
    Magrane, Michele
    Alam-Faruque, Yasmin
    Antunes, Ricardo
    Casanova, Elisabet Barrera
    Bely, Benoit
    Bingley, Mark
    Bower, Lawrence
    Bursteinas, Borisas
    Chan, Wei Mun
    Chavali, Gayatri
    Da Silva, Alan
    Dimmer, Emily
    Eberhardt, Ruth
    Fazzini, Francesco
    Fedotov, Alexander
    Garavelli, John
    Castro, Leyla Garcia
    Gardner, Michael
    Hieta, Reija
    Huntley, Rachael
    Jacobsen, Julius
    Legge, Duncan
    Liu, Wudong
    Luo, Jie
    Orchard, Sandra
    Patient, Samuel
    Pichler, Klemens
    Poggioli, Diego
    Pontikos, Nikolas
    Pundir, Sangya
    Rosanoff, Steven
    Sawford, Tony
    Sehra, Harminder
    Turner, Edward
    Wardell, Tony
    Watkins, Xavier
    Corbett, Matt
    Donnelly, Mike
    van Rensburg, Pieter
    Goujon, Mickael
    McWilliam, Hamish
    Lopez, Rodrigo
    Xenarios, Ioannis
    Bougueleret, Lydie
    Bridge, Alan
    Poux, Sylvain
    Redaschi, Nicole
    [J]. NUCLEIC ACIDS RESEARCH, 2012, 40 (D1) : D71 - D75
  • [2] Network biology:: Understanding the cell's functional organization
    Barabási, AL
    Oltvai, ZN
    [J]. NATURE REVIEWS GENETICS, 2004, 5 (02) : 101 - U15
  • [3] Network medicine: a network-based approach to human disease
    Barabasi, Albert-Laszlo
    Gulbahce, Natali
    Loscalzo, Joseph
    [J]. NATURE REVIEWS GENETICS, 2011, 12 (01) : 56 - 68
  • [4] A physical and functional map of the human TNF-α NF-κB signal transduction pathway
    Bouwmeester, T
    Bauch, A
    Ruffner, H
    Angrand, PO
    Bergamini, G
    Croughton, K
    Cruciat, C
    Eberhard, D
    Gagneur, J
    Ghidelli, S
    Hopf, C
    Huhse, B
    Mangano, R
    Michon, AM
    Schirle, M
    Schlegl, J
    Schwab, M
    Stein, MA
    Bauer, A
    Casari, G
    Drewes, G
    Gavin, AC
    Jackson, DB
    Joberty, G
    Neubauer, G
    Rick, J
    Kuster, B
    Superti-Furga, G
    [J]. NATURE CELL BIOLOGY, 2004, 6 (02) : 97 - +
  • [5] Pathway Commons, a web resource for biological pathway data
    Cerami, Ethan G.
    Gross, Benjamin E.
    Demir, Emek
    Rodchenkov, Igor
    Babur, Oezguen
    Anwar, Nadia
    Schultz, Nikolaus
    Bader, Gary D.
    Sander, Chris
    [J]. NUCLEIC ACIDS RESEARCH, 2011, 39 : D685 - D690
  • [6] UniHI 4: new tools for query, analysis and visualization of the human protein-protein interactome
    Chaurasia, Gautam
    Malhotra, Soniya
    Russ, Jenny
    Schnoegl, Sigrid
    Haenig, Christian
    Wanker, Erich E.
    Futschik, Matthias E.
    [J]. NUCLEIC ACIDS RESEARCH, 2009, 37 : D657 - D660
  • [7] PINA v2.0: mining interactome modules
    Cowley, Mark J.
    Pinese, Mark
    Kassahn, Karin S.
    Waddell, Nic
    Pearson, John V.
    Grimmond, Sean M.
    Biankin, Andrew V.
    Hautaniemi, Sampsa
    Wu, Jianmin
    [J]. NUCLEIC ACIDS RESEARCH, 2012, 40 (D1) : D862 - D865
  • [8] Cusick ME, 2009, NAT METHODS, V6, P39, DOI [10.1038/NMETH.1284, 10.1038/nmeth.1284]
  • [9] HINT: High-quality protein interactomes and their applications in understanding human disease
    Das, Jishnu
    Yu, Haiyuan
    [J]. BMC SYSTEMS BIOLOGY, 2012, 6
  • [10] hUbiquitome: a database of experimentally verified ubiquitination cascades in humans
    Du, Yipeng
    Xu, Nanfang
    Lu, Ming
    Li, Tingting
    [J]. DATABASE-THE JOURNAL OF BIOLOGICAL DATABASES AND CURATION, 2011,