scholarly article | Q13442814 |
P8978 | DBLP publication ID | journals/ploscb/MemisevicZRKPDR15 |
P356 | DOI | 10.1371/JOURNAL.PCBI.1004088 |
P932 | PMC publication ID | 4349708 |
P698 | PubMed publication ID | 25738731 |
P5875 | ResearchGate publication ID | 273150364 |
P50 | author | Anders Wallqvist | Q56419420 |
David Deshazer | Q71303176 | ||
Seesandra V. Rajagopala | Q30470506 | ||
P2093 | author name string | Keehwan Kwon | |
Jaques Reifman | |||
Rembert Pieper | |||
Nela Zavaljevski | |||
Vesna Memišević | |||
P2860 | cites work | The human-bacterial pathogen protein interaction networks of Bacillus anthracis, Francisella tularensis, and Yersinia pestis | Q21136185 |
Structural flexibility in the Burkholderia mallei genome | Q22066378 | ||
Database resources of the National Center for Biotechnology Information | Q22680374 | ||
Gene ontology: tool for the unification of biology | Q23781406 | ||
Cytoscape: a software environment for integrated models of biomolecular interaction networks | Q24515682 | ||
Single-gene disorders: what role could moonlighting enzymes play? | Q24530918 | ||
14-3-3 isotypes facilitate coupling of protein kinase C-zeta to Raf-1: negative regulation by 14-3-3 phosphorylation | Q24531905 | ||
KEGG: Kyoto Encyclopedia of Genes and Genomes | Q24548371 | ||
Manipulation of host-cell pathways by bacterial pathogens | Q36974212 | ||
Burkholderia mallei tssM encodes a putative deubiquitinase that is secreted and expressed inside infected RAW 264.7 murine macrophages | Q37145057 | ||
Moonlighting proteins--an update. | Q37460896 | ||
Autotransporters and Their Role in the Virulence of Burkholderia pseudomallei and Burkholderia mallei | Q37910754 | ||
The current Salmonella‐host interactome | Q37972868 | ||
Computational analysis of interactomes: current and future perspectives for bioinformatics approaches to model the host-pathogen interaction space. | Q38023077 | ||
DualAligner: a dual alignment-based strategy to align protein interaction networks | Q38476577 | ||
NETAL: a new graph-based method for global alignment of protein-protein interaction networks. | Q38489945 | ||
Infection Strategies of Bacterial and Viral Pathogens through Pathogen-Human Protein-Protein Interactions | Q38498315 | ||
Actin-binding proteins from Burkholderia mallei and Burkholderia thailandensis can functionally compensate for the actin-based motility defect of a Burkholderia pseudomallei bimA mutant | Q39614801 | ||
Uncovering biological network function via graphlet degree signatures. | Q40140345 | ||
Multitask learning for host–pathogen protein interactions | Q41554188 | ||
Topological network alignment uncovers biological function and phylogeny | Q41592105 | ||
Multinucleated giant cell formation and apoptosis in infected host cells is mediated by Burkholderia pseudomallei type III secretion protein BipB. | Q42283500 | ||
SPINAL: scalable protein interaction network alignment | Q42687580 | ||
Integrative network alignment reveals large regions of global network similarity in yeast and human | Q43467712 | ||
NetCoffee: a fast and accurate global alignment approach to identify functionally conserved proteins in multiple networks | Q44255464 | ||
BEAMS: backbone extraction and merge strategy for the global many-to-many alignment of multiple PPI networks | Q45483010 | ||
C-GRAAL: common-neighbors-based global GRAph ALignment of biological networks | Q46143407 | ||
SsaM and SpiC interact and regulate secretion of Salmonella pathogenicity island 2 type III secretion system effectors and translocators | Q50095976 | ||
Attenuated virulence and protective efficacy of a Burkholderia pseudomallei bsa type III secretion mutant in murine models of melioidosis | Q63859539 | ||
Moonlighting proteins in neurological disorders | Q84426450 | ||
Genenames.org: the HGNC resources in 2013 | Q24595108 | ||
Basic local alignment search tool | Q25938991 | ||
Continuing evolution of Burkholderia mallei through genome reduction and large-scale rearrangements | Q28277593 | ||
Molecular insights into Burkholderia pseudomallei and Burkholderia mallei pathogenesis | Q28284436 | ||
Type VI secretion is a major virulence determinant in Burkholderia mallei | Q28305456 | ||
UniProt Knowledgebase: a hub of integrated protein data | Q29615864 | ||
BioMart and Bioconductor: a powerful link between biological databases and microarray data analysis | Q30998448 | ||
The landscape of human proteins interacting with viruses and other pathogens | Q33320187 | ||
Burkholderia mallei cluster 1 type VI secretion mutants exhibit growth and actin polymerization defects in RAW 264.7 murine macrophages | Q33557901 | ||
A type IV pilin, PilA, Contributes To Adherence of Burkholderia pseudomallei and virulence in vivo. | Q33795335 | ||
Present and future therapeutic strategies for melioidosis and glanders | Q33797791 | ||
Conserved patterns of protein interaction in multiple species | Q33837704 | ||
Burkholderia mallei cellular interactions in a respiratory cell model. | Q33920455 | ||
DBSecSys: a database of Burkholderia mallei secretion systems. | Q33955395 | ||
Categorizing biases in high-confidence high-throughput protein-protein interaction data sets | Q34005147 | ||
Inferring high-confidence human protein-protein interactions | Q34257665 | ||
SpiC is required for translocation of Salmonella pathogenicity island 2 effectors and secretion of translocon proteins SseB and SseC | Q34318039 | ||
Five Mechanisms of Manipulation by Bacterial Effectors: A Ubiquitous Theme | Q34395262 | ||
Identification of Burkholderia pseudomallei genes required for the intracellular life cycle and in vivo virulence. | Q34681050 | ||
Characterization of the Yersinia enterocolitica type III secretion ATPase YscN and its regulator, YscL. | Q34696832 | ||
Novel Burkholderia mallei virulence factors linked to specific host-pathogen protein interactions. | Q34783879 | ||
KEGGgraph: a graph approach to KEGG PATHWAY in R and bioconductor | Q34967352 | ||
Regulators of G-protein signalling: multifunctional proteins with impact on signalling in the cardiovascular system. | Q35057155 | ||
Strategies for Intracellular Survival of Burkholderia pseudomallei. | Q35173801 | ||
Bacterial virulence in the moonlight: multitasking bacterial moonlighting proteins are virulence determinants in infectious disease | Q35191900 | ||
Type III secretion: a virulence factor delivery system essential for the pathogenicity of Burkholderia mallei. | Q35550224 | ||
Insight into Bacterial Virulence Mechanisms against Host Immune Response via the Yersinia pestis-Human Protein-Protein Interaction Network | Q35671608 | ||
YscN, the putative energizer of the Yersinia Yop secretion machinery | Q36105907 | ||
Bacteria-host-cell interactions at the plasma membrane: stories on actin cytoskeleton subversion. | Q36181599 | ||
Graphlet-based edge clustering reveals pathogen-interacting proteins | Q36218018 | ||
Global network alignment using multiscale spectral signatures | Q36432222 | ||
P275 | copyright license | Creative Commons CC0 License | Q6938433 |
P6216 | copyright status | copyrighted, dedicated to the public domain by copyright holder | Q88088423 |
P4510 | describes a project that uses | Cytoscape | Q3699942 |
P433 | issue | 3 | |
P921 | main subject | Burkholderia mallei | Q134434 |
infectivity | Q1662346 | ||
P304 | page(s) | e1004088 | |
P577 | publication date | 2015-03-04 | |
P1433 | published in | PLOS Computational Biology | Q2635829 |
P1476 | title | Mining host-pathogen protein interactions to characterize Burkholderia mallei infectivity mechanisms | |
P478 | volume | 11 |
Q36138787 | DBSecSys 2.0: a database of Burkholderia mallei and Burkholderia pseudomallei secretion systems |
Q40097830 | Global temporal dynamic landscape of pathogen-mediated subversion of Arabidopsis innate immunity |
Q38844817 | High-throughput proteomics and the fight against pathogens. |
Q39126286 | Innate immune response to Burkholderia mallei |
Q92283123 | Investigating host-bacterial interactions among enteric pathogens |
Q47138796 | Mechanisms of action of Coxiella burnetii effectors inferred from host-pathogen protein interactions |
Q38890754 | Melioidosis and glanders modulation of the innate immune system: barriers to current and future vaccine approaches |
Q89576595 | Meloidogyne incognita PASSE-MURAILLE (MiPM) Gene Encodes a Cell-Penetrating Protein That Interacts With the CSN5 Subunit of the COP9 Signalosome |
Q33734505 | Network Analysis Reveals a Common Host-Pathogen Interaction Pattern in Arabidopsis Immune Responses |
Q33770513 | PKC-η-MARCKS Signaling Promotes Intracellular Survival of Unopsonized Burkholderia thailandensis |
Q36620684 | Phenotypic Characterization of a Novel Virulence-Factor Deletion Strain of Burkholderia mallei That Provides Partial Protection against Inhalational Glanders in Mice |
Q93157318 | Transcriptome analysis of human monocytic cells infected with Burkholderia species and exploration of pentraxin-3 as part of the innate immune response against the organisms |
Q35881003 | Using host-pathogen protein interactions to identify and characterize Francisella tularensis virulence factors |
Q49834322 | Vaccines for the Prevention of Melioidosis and Glanders. |
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