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
AZC_4259ATP synthase protein subunit I; A possible function for this protein is to guide the assembly of the membrane sector of the ATPase enzyme complex. (128 aa)    
Predicted Functional Partners:
atpF2
ATP synthase subunit B precursor; 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 (By similarity).
 
 
 0.976
atpB
H+-transporting two-sector ATPase A subunit; Key component of the proton channel; it plays a direct role in the translocation of protons across the membrane.
  
 
 0.968
atpE
ATP synthase C chain precursor; 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.
  
 
 0.961
atpF1
Putative Fo ATP synthase B chain; 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.
 
 
 0.955
smc
Chromosome segregation protein; Required for chromosome condensation and partitioning. Belongs to the SMC family.
 
     0.594
AZC_3930
Conserved hypothetical protein; FYDLN acid.
  
     0.565
AZC_4284
Alkylated DNA repair protein.
  
     0.476
AZC_2959
Cytochrome C oxidase subunit I; Cytochrome c oxidase is the component of the respiratory chain that catalyzes the reduction of oxygen to water. Subunits 1-3 form the functional core of the enzyme complex. CO I is the catalytic subunit of the enzyme. Electrons originating in cytochrome c are transferred via the copper A center of subunit 2 and heme A of subunit 1 to the bimetallic center formed by heme A3 and copper B.
      
 0.408
AZC_0753
Hypothetical protein.
  
     0.401
Your Current Organism:
Azorhizobium caulinodans
NCBI taxonomy Id: 438753
Other names: A. caulinodans ORS 571, Azorhizobium caulinodans ORS 571, Azorhizobium caulinodans str. ORS 571, Azorhizobium caulinodans strain ORS 571, Rhizobium sp. ORS 571
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