Organism : Geobacter sulfurreducens | Module List :
Regulation information for GSU0689(Mouseover regulator name to see its description)
Motif information (de novo identified motifs for modules)
There are 4 motifs predicted.
|Motif Id||e-value||Consensus||Motif Logo|
Functional Enrichment for GSU0689
Module neighborhood information for GSU0689
|Gene||Common Name||Description||Module membership|
|GSU0007||GSU0007||sensory box histidine kinase (VIMSS)||147, 159|
|GSU0107||spo0J||parB-like domain protein (NCBI)||147, 181|
|GSU0212||GSU0212||ABC transporter, ATP-binding protein (VIMSS)||228, 309|
|GSU0236||GSU0236||conserved hypothetical protein (VIMSS)||309, 333|
|GSU0446||GSU0446||conserved hypothetical protein TIGR00046 (VIMSS)||147, 183|
|GSU0606||alr||alanine racemase (NCBI)||147, 231|
|GSU0607||selD||selenide, water dikinase, selenocysteine-containing (NCBI)||147, 231|
|GSU0613||GSU0613||ResB-like family protein (NCBI)||262, 309|
|GSU0614||GSU0614||cytochrome c biogenesis protein, CcmF/CcyK/CcsA family (VIMSS)||262, 309|
|GSU0615||GSU0615||cytochrome c family protein (VIMSS)||262, 309|
|GSU0616||GSU0616||cytochrome c family protein (VIMSS)||262, 309|
|GSU0679||GSU0679||tellurite resistance protein-related protein (VIMSS)||25, 147|
|GSU0685||GSU0685||radical SAM domain protein (NCBI)||125, 309|
|GSU0686||dxs-1||deoxyxylulose-5-phosphate synthase (NCBI)||107, 309|
|GSU0687||GSU0687||dihydroflavonol 4-reductase, putative (NCBI)||107, 309|
|GSU0688||shc-1||squalene-hopene cyclase (NCBI)||107, 309|
|GSU0689||GSU0689||protein export membrane protein, SecD/SecF family, putative (VIMSS)||147, 309|
|GSU0751||GSU0751||conserved hypothetical protein (VIMSS)||147, 183|
|GSU0932||uraA||uracil permease (NCBI)||147, 164|
|GSU1198||serA||D-3-phosphoglycerate dehydrogenase (NCBI)||125, 309|
|GSU1227||GSU1227||ABC transporter, ATP-binding protein (VIMSS)||11, 147|
|GSU1228||GSU1228||cytochrome c family protein (VIMSS)||11, 147|
|GSU1291||GSU1291||response regulator (VIMSS)||147, 158|
|GSU1527||GSU1527||conserved hypothetical protein (VIMSS)||147, 183|
|GSU1541||GSU1541||conserved hypothetical protein (VIMSS)||13, 147|
|GSU1543||GSU1543||hypothetical protein (VIMSS)||147, 262|
|GSU1721||GSU1721||radical SAM domain protein (NCBI)||125, 309|
|GSU1722||GSU1722||creatinine amidohydrolase (VIMSS)||125, 309|
|GSU1838||hrpB||ATP-dependent helicase HrpB (NCBI)||147, 338|
|GSU1917||uppS||undecaprenyl diphosphate synthase (NCBI)||147, 333|
|GSU2018||gcvH-2||glycine cleavage system H protein (NCBI)||221, 309|
|GSU2019||accC||acetyl-CoA carboxylase, biotin carboxylase (NCBI)||221, 309|
|GSU2020||accB||acetyl-CoA carboxylase, biotin carboxyl carrier protein (NCBI)||91, 309|
|GSU2021||pepQ-2||xaa-pro dipeptidase (NCBI)||11, 309|
|GSU2078||rodA||rod shape-determining protein RodA (NCBI)||147, 207|
|GSU2190||GSU2190||class II Aldolase and Adducin N-terminal domain protein (NCBI)||309, 321|
|GSU2195||guaB||inosine-5'-monophosphate dehydrogenase (NCBI)||262, 309|
|GSU2211||GSU2211||hypothetical protein (VIMSS)||309, 319|
|GSU2219||pleD||response regulator (NCBI)||225, 309|
|GSU2232||metG||methionyl-tRNA synthetase (NCBI)||262, 309|
|GSU2233||GSU2233||conserved hypothetical protein (VIMSS)||125, 309|
|GSU2334||GSU2334||hypothetical protein (VIMSS)||59, 147|
|GSU2429||GSU2429||PPIC-type PPIASE domain protein (NCBI)||125, 309|
|GSU2545||maf||maf protein (NCBI)||42, 147|
|GSU2647||GSU2647||conserved hypothetical protein (VIMSS)||11, 147|
|GSU2694||GSU2694||hypothetical protein (VIMSS)||17, 147|
|GSU2727||GSU2727||hypothetical protein (VIMSS)||11, 147|
|GSU2756||GSU2756||hypothetical protein (VIMSS)||147, 176|
|GSU2783||GSU2783||HDIG domain protein (VIMSS)||147, 296|
|GSU2863||rpoB||DNA-directed RNA polymerase, beta subunit (NCBI)||262, 309|
|GSU3205||GSU3205||MiaB-like tRNA modifying enzyme YliG (NCBI)||47, 147|
|GSU3307||hisS||histidyl-tRNA synthetase, putative (NCBI)||147, 245|
|GSU3353||rluD||RNA pseudouridine synthase family protein (NCBI)||147, 289|
Gene Page Help
If the gene is associated with a module(s), its connection to given modules along with other members of that module are shown as network by using CytoscapeWeb. In this view, each green colored circular nodes represent module member genes, purple colored diamonds represent module motifs and red triangles represent regulators. Each node is connected to module (Bicluster) via edges. This representation provides quick overview of all genes, regulators and motifs for modules. It also allows one to see shared genes/motifs/regulators among diferent modules.
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Regulation tab for each gene includes regulatory influences such as environmental factors or transcription factors or their combinations identified by regulatory network inference algorithms.
If the gene is a member of a module, regulators influencing that module are also considered to regulate the gene. Regulators table list total number of regulatory influences, regulators, modules and type of the influence.
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Network inference algorithm uses de novo motif prediction for assigning genes to modules. If there are any motifs identified in the upstream region of a gene, the motif will be shown here. For each motif sequence logo, consensus and e-value will be shown.
Identification of functional enrichment for the module members is important in associating predicted motifs and regulatory influences with pathways. As described above, the network inference pipeline includes a functional enrichment module by which hypergeometric p-values are used to identify over representation of functional ontology terms among module members.
Network Portal presents functional ontologies from KEGG, GO, TIGRFAM, and COG as separate tables that include function name, type, corrected and uncorrected hypergeometric p-values, and the number of genes assigned to this category out of total number of genes in the module.
Module Members Tab
Identity of gene members in a module may help to identify potential interactions between different functional modules. Therefore, neighbor genes that share the same module(s) with gene under consideration are shown here. For each memebr, gene name, description and modules that contain it are listed.
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CircVisOur circular module explorer is adapted from visquick originally developed by Dick Kreisberg of Ilya Shmulevich lab at ISB for The Cancer Genome Atlas. We use simplified version of visquick to display distribution of module members and their interactions across the genome. This view provides summary of regulation information for a gene. The main components are;
- 1. All genomic elements for the organism are represented as a circle and each element is separated by black tick marks. In this example chromosome and pDV represent main chromosome and plasmid for D. vulgaris Hildenborough, respectively.
- 2. Source gene
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