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IID50129
UniprotP18484
ProteinAP-2 complex subunit alpha-2
GeneAp2a2
OrganismRattus norvegicus
Sequence LLPS PhaSepDB
PhaSePro
LLPSDB
DrLLPS
Network xml rdf
Structure
Experiment
  :order   disorder   conflict   PDB cluster   ProS   Pfam Domain   SEG
938
 order/disorder by at least rule
     disorder by at least rule
     order by at least rule
 order/disorder by majority rule
Seq 1-395 Hetero trimer : IID50215Complex,IID90019Complex
 Evidence X-RAY 4nee G Reference
       Region 4nee G 1-8 disorder
       Region 4nee G 9-395 order
 Evidence X-RAY 4nee A Reference
       Region 4nee A 1-8 disorder
       Region 4nee A 9-46 order
       Region 4nee A 47-49 disorder
       Region 4nee A 50-395 order
 Evidence X-RAY 4nee J Reference
       Region 4nee J 1-8 disorder
       Region 4nee J 9-395 order
 Evidence X-RAY 4nee B Reference
       Region 4nee B 1-8 disorder
       Region 4nee B 9-395 order
Seq 1-620 Hetero pentamer : IID50122Complex,IID50124Complex,P63010
 Evidence X-RAY 2xa7 A Reference
       Region 2xa7 A 1-8 disorder
       Region 2xa7 A 9-271 order
       Region 2xa7 A 272-620 order
Seq 1-620 Hetero tetramer : IID50122Complex,IID50124Complex,P63010
 Evidence X-RAY 2xa7 A Reference
       Region 2xa7 A 1-8 disorder
       Region 2xa7 A 9-271 order
       Region 2xa7 A 272-620 order
Seq 1-620 Hetero tetramer : IID50122Complex,IID50124Complex,P63010
 Evidence X-RAY 2vgl A Reference
       Region 2vgl A 1-8 disorder
       Region 2vgl A 9-607 order
       Region 2vgl A 608-620 disorder
 Evidence X-RAY 4uqi A Reference
       Region 4uqi A 1-8 disorder
       Region 4uqi A 9-607 order
       Region 4uqi A 608-620 disorder
 
Prediction
NeProc
Disorder 1-7,612-700
Order 8-607,701-768,775-938
ProS 612-615,658-663
AlphaFold
Disorder 1-9,47-47,103-105,606-695
Order 10-46,48-102,106-605,696-938
Pfam Hmmer
PF01602 29-590 1.3e-212
PF02883 706-819 3e-39
PF02296 825-937 5e-99
SEG 646-659 ,661-684
Function
Function in SwissProt
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 surrounded 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. During long-term potentiation in hippocampal neurons, AP-2 is responsible for the endocytosis of ADAM10 (By similarity). The AP-2 alpha subunit binds polyphosphoinositide-containing lipids, positioning AP-2 on the membrane. The AP-2 alpha subunit acts via its C-terminal appendage domain as a scaffolding platform for endocytic accessory proteins. The AP-2 alpha and AP-2 sigma subunits are thought to contribute to the recognition of the [ED]-X-X-X-L-[LI] motif (By similarity).