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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
atpISimilar to E. coli membrane-bound ATP synthase, dispensable protein, affects expression of atpB (AAC76762.1); Blastp hit to AAC76762.1 (130 aa), 91% identity in aa 5 - 130. (126 aa)    
Predicted Functional Partners:
atpB
Membrane-bound ATP synthase, F0 sector, subunit a; Key component of the proton channel; it plays a direct role in the translocation of protons across the membrane.
  
  
 0.989
atpE
Membrane-bound ATP synthase, F0 sector, subunit c; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation.
  
  
 0.898
atpH
Membrane-bound ATP synthase, F1 sector, delta-subunit; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation; Belongs to the ATPase delta chain family.
  
  
 0.889
atpA
Membrane-bound ATP synthase, F1 sector, alpha-subunit; Produces ATP from ADP in the presence of a proton gradient across the membrane. The alpha chain is a regulatory subunit. Belongs to the ATPase alpha/beta chains family.
  
  
 0.821
STM0765
Putative cation transporter; Similar to E. coli putative transport protein (AAC75352.1); Blastp hit to AAC75352.1 (610 aa), 31% identity in aa 9 - 193, 27% identity in aa 413 - 610, 27% identity in aa 425 - 594, 24% identity in aa 6 - 196.
      
 0.778
STM1635
Putative ABC-type polar amino acid transport system; ATPase component; similar to E. coli putative ATP-binding component of a transport system (AAC76303.1); Blastp hit to AAC76303.1 (252 aa), 42% identity in aa 11 - 230.
      
 0.778
atpF
Membrane-bound ATP synthase, F0 sector, subunit b; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation.
  
  
 0.776
STM0723
Putative ABC-type polysaccharide/polyol phosphate transport system, ATPase component; Similar to E. coli ATP-binding component of putrescine transport system (AAC73942.1); Blastp hit to AAC73942.1 (404 aa), 28% identity in aa 61 - 259.
      
 0.762
atpG
Membrane-bound ATP synthase, F1 sector, gamma-subunit; Produces ATP from ADP in the presence of a proton gradient across the membrane. The gamma chain is believed to be important in regulating ATPase activity and the flow of protons through the CF(0) complex.
  
  
 0.755
yigP
Putative inner membrane protein; Required for ubiquinone (coenzyme Q) biosynthesis under aerobic conditions. Binds hydrophobic ubiquinone biosynthetic intermediates via its SCP2 domain and is essential for the stability of the Ubi complex (By similarity). May constitute a docking platform where Ubi enzymes assemble and access their SCP2-bound polyprenyl substrates (By similarity). Required for intracellular proliferation in macrophages. Belongs to the UbiJ family.
   
  
 0.687
Your Current Organism:
Salmonella enterica Typhimurium
NCBI taxonomy Id: 99287
Other names: S. enterica subsp. enterica serovar Typhimurium str. LT2, Salmonella enterica subsp. enterica serovar Typhimurium LT2, Salmonella enterica subsp. enterica serovar Typhimurium str. LT2, Salmonella enterica subsp. enterica serovar Typhimurium strain LT2, Salmonella enterica subsp. enterica serovar Typhimurium strain LT2-LTL2, Salmonella typhimurium LT2
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