STRINGSTRING
STRING protein interaction network
Nodes:
Network nodes represent proteins
splice isoforms or post-translational modifications are collapsed, i.e. each node represents all the proteins produced by a single, protein-coding gene locus.
Node Color
colored nodes:
query proteins and first shell of interactors
white nodes:
second shell of interactors
Node Content
empty nodes:
proteins of unknown 3D structure
filled nodes:
a 3D structure is known or predicted
Edges:
Edges represent protein-protein associations
associations are meant to be specific and meaningful, i.e. proteins jointly contribute to a shared function; this does not necessarily mean they are physically binding to each other.
Known Interactions
from curated databases
experimentally determined
Predicted Interactions
gene neighborhood
gene fusions
gene co-occurrence
Others
textmining
co-expression
protein homology
Your Input:
Neighborhood
Gene Fusion
Cooccurrence
Coexpression
Experiments
Databases
Textmining
[Homology]
Score
rfaQCatalyzes the transfer of heptose(III) to heptose(II) in the lipopolysaccharide inner core; Derived by automated computational analysis using gene prediction method: Protein Homology. (350 aa)    
Predicted Functional Partners:
APZ05076.1
Glucosyltransferase I RfaG; Catalyzes the addition of the first glucose residue to the LPS core; Derived by automated computational analysis using gene prediction method: Protein Homology.
 
  
 0.981
rfaP
Lipopolysaccharide core heptose(I) kinase RfaP; Catalyzes the phosphorylation of heptose(I) of the outer membrane lipopolysaccharide core; Belongs to the protein kinase superfamily. KdkA/rfaP family.
 
 
 0.972
nuoC
NADH-quinone oxidoreductase subunit C/D; NDH-1 shuttles electrons from NADH, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory chain. The immediate electron acceptor for the enzyme in this species is believed to be ubiquinone. Couples the redox reaction to proton translocation (for every two electrons transferred, four hydrogen ions are translocated across the cytoplasmic membrane), and thus conserves the redox energy in a proton gradient; In the C-terminal section; belongs to the complex I 49 kDa subunit family.
    
 
 0.943
APZ05078.1
Glycosyl transferase; Derived by automated computational analysis using gene prediction method: Protein Homology.
 
  
 0.906
rfaY
Heptose kinase; Catalyzes the phosphorylation of heptose(II) of the outer membrane lipopolysaccharide core; Derived by automated computational analysis using gene prediction method: Protein Homology.
  
 
 0.850
rfaF
ADP-heptose--LPS heptosyltransferase; Catalyzes the transfer of the second heptose to the heptosyl-KDO2 moiety of the lipopolysaccharide inner core; Derived by automated computational analysis using gene prediction method: Protein Homology.
 
  
0.834
APZ05079.1
Lipopolysaccharide 1,3-galactosyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology.
 
  
 0.832
hldE
Bifunctional heptose 7-phosphate kinase/heptose 1-phosphate adenyltransferase; Catalyzes the ADP transfer from ATP to D-glycero-beta-D- manno-heptose 1-phosphate, yielding ADP-D-glycero-beta-D-manno-heptose. In the N-terminal section; belongs to the carbohydrate kinase PfkB family.
 
  
 0.825
APZ03671.1
Ferredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology.
  
   0.820
APZ05080.1
Lipopolysaccharide 1,2-glucosyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology.
 
  
 0.797
Your Current Organism:
Kosakonia cowanii
NCBI taxonomy Id: 208223
Other names: CCUG 45998 A, CCUG 45998 B, CIP 107300, DSM 18146, Enterobacter cowanii, Enterobacter cowanii Inoue et al. 2001, JCM 10956, K. cowanii, Kosakonia cowanii (Inoue et al. 2001) Brady et al. 2013, LMG 23569, LMG:23569, NIH group 42, strain 888-76, strain KSK 246, strain UM-79
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