Gene Ontology annotation through association of InterPro records with GO terms.
Annotation inferences using phylogenetic trees
Gene Ontology annotation based on curation of immunofluorescence data
Automatic transfer of experimentally verified manual GO annotation data to orthologs using Ensembl Compara.
Combined Automated Annotation using Multiple IEA Methods.
A reference map of the human binary protein interactome.
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HuRI systematic proteome-wide yeast two-hybrid screen identified binary protein interactions for STOML3 with ADAM33, CLDN19, JAGN1, SEC22A, UPK2, and ZDHHC24.
"The dataset, versioned HI-III-20 (Human Interactome obtained from screening Space III, published in 2020), contains 52,569 verified PPIs involving 8,275 proteins (Supplementary Table 9)."
ASICs bind STOML3, (STOM)
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STOML3 and stomatin are accessory proteins for ASIC channels, modulating their gating properties. STOML3 binds ASIC1a, 1b, 2a, 2b, 3 and 4.
"STOML3 can bind ASIC1a, 1b, 2a, 2b, 3 and 4 (Lapatsina et al. 2012)"
Tuning piezo ion channels to detect molecular-scale movements relevant for fine touch
Membrane stiffening by STOML3 facilitates mechanosensation in sensory neurons
Regulation of ASIC channels by a stomatin/STOML3 complex located in a mobile vesicle pool in sensory neurons
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STOML3 directly interacts with ASIC subunits (ASIC1a, 1b, 2a, 2b, 3, 4) demonstrated by co-immunoprecipitation and FRET. STOML3-positive vesicles are Rab11-positive and microtubule-dependent. The N-terminal hydrophobic region is required for vesicular localization.
Small-molecule inhibition of STOML3 oligomerization reverses pathological mechanical hypersensitivity
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High-throughput BiFC screening identified small molecules (OB-1, OB-2) that inhibit STOML3 oligomerization, shrink STOML3 nanoclusters, reduce mechanically-activated currents, silence mechanoreceptors, and reverse mechanical hypersensitivity in neuropathic and diabetic models.
Deep research on STOML3 function
Cyberian deep research on STOML3 function