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
M4C964_BRARPRING-type domain-containing protein. (308 aa)    
Predicted Functional Partners:
M4DGH6_BRARP
AP complex subunit sigma; Belongs to the adaptor complexes small subunit family.
   
 0.965
M4EF77_BRARP
AP complex subunit sigma; Belongs to the adaptor complexes small subunit family.
   
 0.965
M4CDZ6_BRARP
AP-2 complex subunit alpha; Subunit of the adaptor protein complex 2 (AP-2). Adaptor protein complexes function in protein transport via transport vesicles in different membrane traffic pathways. Adaptor protein complexes are vesicle coat components and appear to be involved in cargo selection and vesicle formation. AP-2 is involved in clathrin-dependent endocytosis in which cargo proteins are incorporated into vesicles surrounded by clathrin (clathrin-coated vesicles, CCVs) which are destined for fusion with the early endosome.
   
 0.964
M4F940_BRARP
AP-2 complex subunit alpha; Subunit of the adaptor protein complex 2 (AP-2). Adaptor protein complexes function in protein transport via transport vesicles in different membrane traffic pathways. Adaptor protein complexes are vesicle coat components and appear to be involved in cargo selection and vesicle formation. AP-2 is involved in clathrin-dependent endocytosis in which cargo proteins are incorporated into vesicles surrounded by clathrin (clathrin-coated vesicles, CCVs) which are destined for fusion with the early endosome.
   
 0.964
M4E348_BRARP
AP-4 complex subunit epsilon; AP-4 forms a non clathrin-associated coat on vesicles departing the trans-Golgi network (TGN) and may be involved in the targeting of proteins from the trans-Golgi network (TGN) to the endosomal-lysosomal system; Belongs to the adaptor complexes large subunit family.
   
 0.923
M4E7I4_BRARP
Adaptin_N domain-containing protein.
   
 0.923
M4DM06_BRARP
MHD domain-containing protein; Belongs to the adaptor complexes medium subunit family.
   
 0.912
M4DZV5_BRARP
MHD domain-containing protein; Belongs to the adaptor complexes medium subunit family.
   
 0.912
M4E8A3_BRARP
MHD domain-containing protein; Belongs to the adaptor complexes medium subunit family.
   
 0.912
M4CAQ7_BRARP
Clathrin heavy chain; Clathrin is the major protein of the polyhedral coat of coated pits and vesicles; Belongs to the clathrin heavy chain family.
   
 0.908
Your Current Organism:
Brassica rapa
NCBI taxonomy Id: 51351
Other names: B. rapa subsp. pekinensis, Brassica campestris (Pekinensis Group), Brassica campestris subsp. pekinensis, Brassica campestris subsp. pekinensis (Lour.) G.Olsson, Brassica campestris var. pekinensis, Brassica pekinensis, Brassica rapa Chinese Cabbage Group, Brassica rapa subsp. pekinensis, Brassica rapa subsp. pekinensis (Lour.) Hanelt ex Mansf., Brassica rapa var. glabra, Brassica rapa var. glabra Regel, Brassica rapa var. pekinensis, Chinese cabbage, bai cai, celery cabbage, pe-tsai
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