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- W4323804541 abstract "Abstract While several computational methods have been developed to predict the functional relevance of phosphorylation sites, experimental analysis of the interdependency between protein phosphorylation and Protein–Protein Interactions (PPIs) remains challenging. Here, we describe an experimental strategy to establish interdependencies between protein phosphorylation and complex formation. This strategy is based on three main steps: (i) systematically charting the phosphorylation landscape of a target protein; (ii) assigning distinct proteoforms of the target protein to different protein complexes by native complex separation (AP‐BNPAGE) and protein correlation profiling; and (iii) analyzing proteoforms and complexes in cells lacking regulators of the target protein. We applied this strategy to YAP1, a transcriptional co‐activator for the control of organ size and tissue homeostasis that is highly phosphorylated and among the most connected proteins in human cells. We identified multiple YAP1 phosphosites associated with distinct complexes and inferred how both are controlled by Hippo pathway members. We detected a PTPN14/LATS1/YAP1 complex and suggest a model how PTPN14 inhibits YAP1 via augmenting WW domain‐dependent complex formation and phosphorylation by LATS1/2." @default.
- W4323804541 created "2023-03-11" @default.
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- W4323804541 date "2023-03-10" @default.
- W4323804541 modified "2023-10-14" @default.
- W4323804541 title "Phosphorylation‐linked complex profiling identifies assemblies required for Hippo signal integration" @default.
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- W4323804541 doi "https://doi.org/10.15252/msb.202211024" @default.
- W4323804541 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/36896621" @default.
- W4323804541 hasPublicationYear "2023" @default.
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