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Proximity-dependent biotinylation methods, such as those mediated by BioID and APEX, are being widely adopted for studying in vivo protein-protein interaction dynamics and subcellular structures. However, these along with other biotin-based technologies are severely dependent on avidin family protei...
ORGANISM(S): Homo sapiens (Human) Mus musculus (Mouse) 
2017-12-19 | PXD007862 | Pride
Non-receptor tyrosine kinases represent an important class of signaling molecules which are involved in driving diverse cellular pathways. Although the large majority have been well-studied in terms of their protein binding partners, the interactomes of some important non-receptor tyrosine kinases s...
ORGANISM(S): Homo sapiens (Human) 
2021-08-25 | PXD010474 | Pride
Promiscuous labeling enzymes, such as APEX2 or TurboID, are commonly used in in situ biotinylation studies of subcellular proteomes or protein-protein interactions. Although the conventional approach of enriching biotinylated proteins is widely implemented, in-depth identification of specific biotin...
ORGANISM(S): Homo sapiens (Human) 
2024-05-22 | PXD047979 | Pride
Drug-ID applies proximity biotinylation to identify drug-protein interactions inside living cells. The covalent conjugation of a drug molecule with a biotin ligase enables targeted biotinylation of the drug-bound proteome and its identification by SILAC-MS/MS. We investigate the interactome of two w...
ORGANISM(S): Homo sapiens (Human) 
2024-01-09 | PXD045992 | Pride
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