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Liu, C. S. C.

Publications and source records attributed to Liu, C. S. C..

2 recordsLinked to original sources

Spatio-temporal regulation of ligand trafficking and TLR9 activation involves PIEZO1 mechanosensing in human plasmacytoid dendritic cells

Plasmacytoid dendritic cells (pDCs) are specialized innate immune cells which play a pivotal role in antiviral immunity by producing large quantities of type I interferons (IFNs) upon sensing nucleic acids via Toll-like receptor 9 (TLR9). Synthetic oligodeoxynucleotides (ODNs) such as CpGA and CpGB, both containing unmethylated CpG motifs, are commonly used experimental TLR9 agonists. Interestingly, CpGA and CpGB elicit markedly different responses in pDCs - CpGA induces robust IFN- production, whereas CpGB does not. The mechanistic basis underlying this ligand-specific functional divergence has remained unclear. Here, we identify PIEZO1, a mechanosensory ion channel, as a critical determinant of ligand-specific IFN responses in human primary pDCs. We demonstrate that unlike CpGB, CpGA self-associates into larger aggregates that generate membrane tension during cellular uptake, leading to activation of PIEZO1. This activation triggers localized calcium influx and cytoskeletal remodeling, resulting in the formation of local F-actin structures that retain CpGA within early endosomes enabling sustained IRF7 nuclear translocation and robust type I IFN production. Disruption of PIEZO1 or actin polymerization abrogates CpGA-induced IFN production, while pharmacological activation of Piezo1 enhances IFN production in response to CpGB. Thus, these findings uncover a previously unrecognized biophysical checkpoint in nucleic acid sensing, wherein membrane tension is transduced via PIEZO1 into spatially controlled TLR9 signaling. Overall, our study establishes PIEZO1 mechanosensing at the plasma membrane as a key regulatory event in nucleic acid-induced immunity, with different functional outcomes based on the cargo structure, opening potential new avenues for modulating type I IFN responses in infection and autoimmunity.

immunology↗

Piezo1 mechanosensing regulates integrin-dependent chemotactic migration in human T cells

T cells are crucial for efficient antigen-specific immune responses and thus their migration within the body, to inflamed tissues from circulating blood or to secondary lymphoid organs, play a very critical role. T cell extravasation in inflamed tissues depends on chemotactic cues and interaction between endothelial adhesion molecules and cellular integrins. A migrating T cell is expected to sense diverse external and membrane-intrinsic mechano-physical cues, but molecular mechanisms of such mechanosensing in cell migration are not established. We explored if the professional mechanosensor Piezo1 play any role during integrin-dependent chemotaxis of human T cells. We found that deficiency of Piezo1 in human T cells interfered with integrin-dependent cellular motility on ICAM-1-coated surface. Piezo1 recruitment at the leading edge of moving T cells is dependent on and follows focal adhesion formation at the leading edge and local increase in membrane tension on chemokine receptor activation. Piezo1 recruitment and activation, followed by calcium influx and calpain activation, in turn are crucial for the integrin LFA-1 (CD11a/CD18) recruitment at the leading edge of the chemotactic human T cells. Thus, we find that Piezo1 activation in response to local mechanical cues constitutes a membrane-intrinsic component of the outside-in signaling in human T cells, migrating in response to chemokines, that mediates integrin recruitment to the leading edge.

immunology↗