Citrus Sinensis ID: 013709


Local Sequence Feature Prediction

Prediction and MethodResult
Residue Number Marker
Protein Sequence ?
Secondary Structure (Consensus) ?
Disordered Region (Consensus) ?
Transmembrane Helix (Consensus) ?
Signal Peptide (Consensus) ?
Coiled Coil (COILS) ?
 
--------10--------20--------30--------40--------50--------60--------70--------80--------90-------100-------110-------120-------130-------140-------150-------160-------170-------180-------190-------200-------210-------220-------230-------240-------250-------260-------270-------280-------290-------300-------310-------320-------330-------340-------350-------360-------370-------380-------390-------400-------410-------420-------430-------44
MPVAASAIYFLNLRGDVLINRLYRDDVGGNMVDAFRTHIMQTKELGTCPVRQIGGCSFFYMRISNVYIVIVVSSNANVACAFKFVVEAVALFKSYFGGAFDEDAIRNNFVLIYELLDEIMDFGYPQNLSPEILKLYITQEGVRSPFSSKPTDRPVPNATLQVTGAVGWRREGLVYKKNEVFLDIVESVNLLMSSKGSVLRCDVTGKILMKCFLSGMPDLKLGLNDKIGLEKESQLKSRPTKSGKTIELDDVTFHQCVNLTRFNSEKTVSFVPPDGEFELMKYRITEGVNLPFRVLPTIKELGRTRMEVNVKIKSVFGAKMFALGVVIKIPVPKQTAKTSFQVTSGRAKYNASIDCLVWKIRKFPGQTEPTMSAEVELISTMAEKKSWTRPPIQMEFQVPMFTASGLRVRFLKVWEKSGYNTVEWVRYITKAGSYEIRC
cccEEEEEEEEcccccEEEEEcccccccccHHHHHHHHHHHccccccccEEEEccEEEEEEEEccEEEEEEEcccccHHHHHHHHHHHHHHHHHHccccccHHHHcHHHHHHHHHHHHHHcccccccccHHHHHcccccccccccccccccccccccccccccccEEECccccEECccEEEEEEEEEEEEEEcccccEEEEEEEEEEEEEEEEccccCEEEECcccccccccccccccccccccEEEcccccccccccccccccccEEEEEcccccEEEEEEEEcccccccEEEEEEEEEEccEEEEEEEEEEEcccccEEEEEEEEEcccccccccCEEEEcEEEEEEEccccEEEEEEcccccccccEEEEEEEEEcccccccccccccEEEEEEEcEEEccccEEEEEEEEEcccccccccEEEEEEEEcEEEcc
*PVAASAIYFLNLRGDVLINRLYRDDVGGNMVDAFRTHIMQTKELGTCPVRQIGGCSFFYMRISNVYIVIVVSSNANVACAFKFVVEAVALFKSYFGGAFDEDAIRNNFVLIYELLDEIMDFGYPQNLSPEILKLYITQEG****************ATL**TGAVGWRREGLVYKKNEVFLDIVESVNLLMSSKGSVLRCDVTGKILMKCFLSGMPDLKLGLNDKIG*****************IELDDVTFHQCVNLTRFNSEKTVSFVPPDGEFELMKYRITEGVNLPFRVLPTIKELGRTRMEVNVKIKSVFGAKMFALGVVIKIPVPKQTAKTSFQVTSGRAKYNASIDCLVWKIRKFPGQTEPTMSAEVELIST*****SWTRPPIQMEFQVPMFTASGLRVRFLKVWEKSGYNTVEWVRYITKAGSYEIRC
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MPVAASAIYFLNLRGDVLINRLYRDDVGGNMVDAFRTHIMQTKELGTCPVRQIGGCSFFYMRISNVYIVIVVSSNANVACAFKFVVEAVALFKSYFGGAFDEDAIRNNFVLIYELLDEIMDFGYPQNLSPEILKLYITQEGVRSPFSSKPTDRPVPNATLQVTGAVGWRREGLVYKKNEVFLDIVESVNLLMSSKGSVLRCDVTGKILMKCFLSGMPDLKLGLNDKIGLEKESQLKSRPTKSGKTIELDDVTFHQCVNLTRFNSEKTVSFVPPDGEFELMKYRITEGVNLPFRVLPTIKELGRTRMEVNVKIKSVFGAKMFALGVVIKIPVPKQTAKTSFQVTSGRAKYNASIDCLVWKIRKFPGQTEPTMSAEVELISTMAEKKSWTRPPIQMEFQVPMFTASGLRVRFLKVWEKSGYNTVEWVRYITKAGSYEIRC

Function Prediction

Annotation transfered from Closely Related SWISS-PROT Entries ?

Annotation ?Function Description ?Confidence Level ?Reference Protein ?
AP-2 complex subunit mu Component of the adaptor complexes which link clathrin to receptors in coated vesicles. Clathrin-associated protein complexes are believed to interact with the cytoplasmic tails of membrane proteins, leading to their selection and concentration. AP50 is a subunit of the plasma membrane adaptor.probableP54672
AP-2 complex subunit mu Component 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 surrrounded by clathrin (clathrin-coated vesicles, CCVs) which are destined for fusion with the early endosome. The clathrin lattice serves as a mechanical scaffold but is itself unable to bind directly to membrane components. Clathrin-associated adaptor protein (AP) complexes which can bind directly to both the clathrin lattice and to the lipid and protein components of membranes are considered to be the major clathrin adaptors contributing the CCV formation. AP-2 also serves as a cargo receptor to selectively sort the membrane proteins involved in receptor-mediated endocytosis. AP-2 seems to play a role in the recycling of synaptic vesicle membranes from the presynaptic surface. AP-2 recognizes Y-X-X-[FILMV] (Y-X-X-Phi) and [ED]-X-X-X-L-[LI] endocytosis signal motifs within the cytosolic tails of transmembrane cargo molecules. AP-2 may also play a role in maintaining normal post-endocytic trafficking through the ARF6-regulated, non-clathrin pathway. The AP-2 mu subunit binds to transmembrane cargo proteins; it recognizes the Y-X-X-Phi motifs. The surface region interacting with to the Y-X-X-Phi motif is inaccessible in cytosolic AP-2, but becomes accessible through a conformational change following phosphorylation of AP-2 mu subunit at 'Tyr-156' in membrane-associated AP-2. The membrane-specific phosphorylation event appears to involve assembled clathrin which activates the AP-2 mu kinase AAK1 (By similarity). Plays a role in endocytosis of frizzled family members upon Wnt signaling.probableQ96CW1
AP-2 complex subunit mu Component 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 surrrounded by clathrin (clathrin-coated vesicles, CCVs) which are destined for fusion with the early endosome. The clathrin lattice serves as a mechanical scaffold but is itself unable to bind directly to membrane components. Clathrin-associated adaptor protein (AP) complexes which can bind directly to both the clathrin lattice and to the lipid and protein components of membranes are considered to be the major clathrin adaptors contributing the CCV formation. AP-2 also serves as a cargo receptor to selectively sort the membrane proteins involved in receptor-mediated endocytosis. AP-2 seems to play a role in the recycling of synaptic vesicle membranes from the presynaptic surface. AP-2 recognizes Y-X-X-[FILMV] (Y-X-X-Phi) and [ED]-X-X-X-L-[LI] endocytosis signal motifs within the cytosolic tails of transmembrane cargo molecules. AP-2 may also play a role in maintaining normal post-endocytic trafficking through the ARF6-regulated, non-clathrin pathway. The AP-2 mu subunit binds to transmembrane cargo proteins; it recognizes the Y-X-X-Phi motifs. The surface region interacting with to the Y-X-X-Phi motif is inaccessible in cytosolic AP-2, but becomes accessible through a conformational change following phosphorylation of AP-2 mu subunit at 'Tyr-156' in membrane-associated AP-2. The membrane-specific phosphorylation event appears to involve assembled clathrin which activates the AP-2 mu kinase AAK1 (By similarity). Plays a role in endocytosis of frizzled family members upon Wnt signaling.probableQ5NVF7

Prediction of Enzyme Commission Number ?

No EC number assigned to the protein, probably not an enzyme!


Spatial Structural Prediction

Structural Models Based on Templates

Template: 1W63, chain M
Confidence level:very confident
Coverage over the Query: 4-154,166-226,246-377,389-438
View the alignment between query and template
View the model in PyMOL