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Foote, A. K.

Publications and source records attributed to Foote, A. K..

2 recordsLinked to original sources

Chimeric Antigen Receptors Transmit Piconewton Forces that are Coupled with T Cell Function

Chimeric antigen receptor (CAR) T cells are engineered to display a receptor that binds antigens expressed on the surface of cancerous cells, which leads to cancer cytotoxicity. Recently, the T cell field has come to recognize the role of small, piconewton level forces in establishing specificity and cytotoxicity in naive T cells with the {beta} TCR, raising the possibility that these forces could be present in CAR T cells. Using DNA-based tension probes, we reveal 8-19 pN mechanical forces with [~]1 sec timescales transmitted by CAR T cells to their target antigens. CAR-antigen force magnitude is independent of CAR expression level and shows heterogeneity across different T cell donors, suggesting utility as a biomarker of T cell fitness. Using an established exhaustion model, we show strong correlation between CAR exhaustion, cytotoxic capacity, and CAR-antigen force, suggesting that CAR mechanics provide a biomarker of CAR potency complementary to functional assays. Pharmacological inhibition studies demonstrate that CAR forces are driven by actin, Zap70 and Src family proximal kinases. Titration of dasatinib, a clinically used tyrosine kinase inhibitor also dampens both CAR-antigen tension and CAR function in a dose-dependent manner. Structural engineering of the CAR confirms that force levels are modulated by the scFv receptor and co-stimulatory domains, but force transmission requires CD3{zeta} ITAMs. Taken together, this work shows that CAR T cells transmit pN force to their cognate antigens which holds potential significance in the design and screening of CAR therapeutic candidates and for predicting treatment outcomes in a personalized fashion.

biophysics↗

Measuring integrin force loading rates using a two-step DNA tension sensor

Cells apply forces to extracellular matrix (ECM) ligands through transmembrane integrin receptors: an interaction which is intimately involved in cell motility, wound healing, cancer invasion and metastasis. These small (pN) forces exerted by cells have been studied by molecular tension fluorescence microscopy (MTFM), which utilizes a force-induced conformational change of a probe to detect mechanical events. MTFM has revealed the force magnitude for integrins receptors in a variety of cell models including primary cells. However, force dynamics and specifically the force loading rate (LR) have important implications in receptor signaling and adhesion formation and remain poorly characterized. Here, we develop a LR probe which is comprised of an engineered DNA structures that undergoes two mechanical transitions at distinct force thresholds: a low force threshold at 4.7 pN corresponding to hairpin unfolding and a high force threshold at 56 pN triggered through duplex shearing. These transitions yield distinct fluorescence signatures observed through single-molecule fluorescence microscopy in live-cells. Automated analysis of tens of thousands of events from 8 cells showed that the bond lifetime of integrins that engage their ligands and transmit a force >4.7 pN decays exponentially with a {tau} of 45.6 sec. A small subset of these events (<10%) mature in magnitude to >56pN with a median loading rate of 1.3 pNs-1 with these mechanical ramp events localizing at the periphery of the cell-substrate junction. Importantly, the LR probe design is modular and can be adapted to measure force ramp rates for a broad range of mechanoreceptors and cell models, thus aiding in the study of mechanotransduction. TOC O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=66 SRC="FIGDIR/small/585042v1_ufig1.gif" ALT="Figure 1"> View larger version (18K): org.highwire.dtl.DTLVardef@1df1342org.highwire.dtl.DTLVardef@696995org.highwire.dtl.DTLVardef@92bd9dorg.highwire.dtl.DTLVardef@1decc42_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗