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Rudnick, J.

Publications and source records attributed to Rudnick, J..

2 recordsLinked to original sources

Ligand stabilization enables physiological GITR signaling and antitumor immunity

Agonistic antibodies targeting the costimulatory receptor GITR have failed in clinical trials despite a strong preclinical rationale, revealing fundamental limitations of receptor-targeted approaches to TNF superfamily agonism. Here, we demonstrate that pharmacological stabilization of the trimeric structure of human GITRL represents a mechanistically distinct strategy to overcome these limitations. Small-molecule stabilization of GITRL preserves its membrane residency. It enables bidirectional signaling between antigen-presenting cells and T cells, a physiological context that receptor-targeted antibodies bypass through non-physiological clustering of GITR. In humanized GITR/GITRL double-knock-in mice bearing syngeneic tumors, GITRL stabilization expands cytotoxic CD8 T cells, selectively depletes intratumoral regulatory T cells, activates APCs, and restructures the immune spatial architecture. In patient-derived tumor explants, GITRL stabilization reactivates suppressed CD8 T cells in an APC-dependent manner. Our findings establish ligand stabilization as a mechanistically distinct therapeutic strategy and provide a framework for engaging TNF receptor superfamily costimulatory pathways by modulating their native ligands.

cancer biology↗

Endocytosis at Extremes: Formation and Internalization of Giant Clathrin-coated Pits Under Elevated Membrane Tension

Internalization of clathrin-coated vesicles from the plasma membrane constitutes the major endocytic route for receptors and their ligands. Dynamic and structural properties of endocytic clathrin coats are regulated by the mechanical properties of the plasma membrane. Here, we used conventional fluorescence imaging and multiple modes of structured illumination microscopy (SIM) to image formation of endocytic clathrin coats within live cells and tissues of developing fruit fly embryos. High resolution in both spatial and temporal domains allowed us to detect and characterize distinct classes of clathrin-coated structures. For the first time, we show that membrane tension induces formation of giant coated pits (GCPs) that can be up to two orders of magnitude larger than the canonical clathrin-coated pits. GCPs take longer to form but their mechanism of curvature generation is the same as the canonical pits. We also demonstrate that GCPs can split into smaller fragments during internalization. Considering the supporting roles played by actin filament dynamics in clathrin-mediated endocytosis under mechanically stringent conditions, we suggest that local changes in the coat curvature driven by actin machinery can drive splitting and internalization of GCPs.

biophysics↗