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Biology subjects

HUI, E.

Publications and source records attributed to HUI, E..

2 recordsLinked to original sources

PD1-induced Shp2 condensation organizes inhibitory signalosomes through selective substrate partitioning

The formation of microclusters is a hallmark of PD1 engagement with its ligands, yet the physical basis and functional significance of this phenomenon remain unclear. Here we show that ligand-bound PD1 licenses Shp2 self-association and liquid-liquid phase separation (LLPS), producing dynamic PD1:Shp2 condensates whose liquidity depends on Shp2 catalytic activity. Mutations that selectively disrupt Shp2 self-association weaken PD1 microcluster formation and impair PD1 inhibitory function. Mechanistically, PD1-induced Shp2 LLPS promotes the co-compartmentalization of signaling substrates such as CD3{zeta} and CD28, thereby facilitating its dephosphorylation. These findings identify Shp2 LLPS as an intrinsic organizing principle of the PD1 inhibitory pathway that links enzymatic activation, substrate selectivity and mesoscale assembly to suppress T cell activation.

biochemistry↗

BTLA and PD-1 employ distinct phosphatases to differentially repress T cell signaling

T cell-mediated destruction of tumors and virus-infected cells is restricted by co-inhibitory receptors such as programmed cell death protein 1 (PD-1). Monoclonal antibodies blocking PD-1 have produced impressive clinical activity against human cancers, but durable response is limited to a minority of patients. Previous results suggest that B and T lymphocyte attenuator (BTLA), a co-inhibitory receptor structurally related to PD-1, may contribute to the resistance to PD-1 targeted therapy and co-blockade of BTLA can enhance the efficacy of anti-PD-1 immunotherapy. However, the biochemical mechanism by which BTLA represses T cell activity and to what extent the mechanism differs from that of PD-1 is unknown. Here we examine differences in the ability of BTLA and PD-1 to recruit effector molecules and regulate T cell signaling. We show that PD-1 and BTLA recruit different tyrosine phosphatases to regulate either CD28 or T cell antigen receptor (TCR)-signaling cascades. Our data reveal unexpected disparities between two structurally related immune checkpoints and two phosphatase paralogs.

cell biology↗