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Wybenga-Groot, L.

Publications and source records attributed to Wybenga-Groot, L..

2 recordsLinked to original sources

Targeting CBL ubiquitin ligase activation to downregulate tyrosine kinase signalling

The CBL E3 ubiquitin ligase is a critical regulator of tyrosine kinase (TK) signalling. CBL activity is regulated by a feedback loop in which an active TK phosphorylates CBL, relieving its autoinhibited conformation, and allowing ubiquitination of substrates, including TKs, leading to their degradation. Binding of the Src Like Adapter Protein 2 (SLAP2) to CBL can also activate autoinhibited CBL and promote substrate ubiquitination. Using an engineered CBL mutant in the SLAP2 binding interface, termed RE CBL, that mimics activation by SLAP2 binding, we characterized the cellular functions of this CBL activation mechanism. Comparison of wildtype and RE CBL interactomes using MiniTurboID showed extensive and overlapping interaction networks, with a discrete subset of proteins, including the known substrate, epidermal growth factor receptor (EGFR), as well as endocytic factors such as EPS15, in higher abundance with RE CBL compared to wildtype. Consistent with these observations, RE CBL interacted more readily with EGFR, enhanced EGFR internalization, and attenuated downstream signalling compared to WT. In Cbl null hematopoietic cells, RE CBL expression reduced sensitivity to cytokines IL-3 and GM-CSF, and decreased activation of the Src-family kinase Lyn. Furthermore, we optimized and conducted a small molecule screen to identify a group of structurally related compounds that, like SLAP2 binding, promoted CBL activation in vitro. Together these findings provide proof of concept for targeting CBL activity to downregulate TK signalling.

biochemistry↗

Membrane contact site resident PTP1B limits superoxide production by suppressing a Syk-Shc1-Phagocyte Oxidase relay.

Phagocytosis is a specialized endocytic process used by macrophages and dendritic cells to engulf particles, which requires coordinated signaling cascades, cytoskeletal remodeling, and assembly of antimicrobial machinery to eliminate pathogens. During Fc {gamma} receptor (Fc{gamma}R)-mediated phagocytosis, dynamic actin depolymerization at the base of the phagocytic cup creates permissive conditions for endoplasmic reticulum-plasma membrane (ER-PM) membrane contact sites (MCS) to form. We demonstrate that the ER-resident protein tyrosine phosphatase PTP1B localizes to newly formed or expanded ER-PM MCS during phagocytosis and dephosphorylates Syk. Using TIRF microscopy with MCS residents, including MAPPER, STIM1, and E-Syts, we show that actin clearance allows ER proteins to approach the plasma membrane. PTP1B colocalizes with Fc{gamma}Rs in actin-cleared zones and physically interacts with Syk, a critical mediator of phagocytic signaling. Loss of PTP1B led to sustained Syk hyperphosphorylation without affecting phagocytosis. However, the PTP1B-deficient cells showed a {asymp}3-fold increase in NADPH oxidase 2 (NOX2)-mediated superoxide production. Using unbiased proteomics, we identified the adapter protein Shc1 as a critical intermediate linking Syk phosphorylation to NOX2 activation. Shc1 phosphorylation during phagocytosis is dependent on Src family kinases and Syk, while genetic ablation of SHC1 reduced superoxide production by {asymp}40%. Proximity ligation assays reveal enhanced Shc1-p47phox interactions in PTP1B-deficient cells during phagocytosis. These findings establish an SFK-Syk-Shc1-NOX2 signaling axis that PTP1B negatively regulates at MCS between the ER and the forming phagosome, providing new mechanistic insights into antimicrobial responses during phagocytosis.

cell biology↗