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Biology subjects

Mamonkin, M.

Publications and source records attributed to Mamonkin, M..

2 recordsLinked to original sources

Integrating activation-induced costimulation and cytokine signals enhance TCR-based cell therapies

TCR-based cell therapies offer broad targeting of tumor antigens with high sensitivity but often low durability due to insufficient costimulation (signal 2) and cytokine (signal 3) support. To address this, we developed a dual stimulatory receptor (DSR) consisting of the 4-1BBL ectodomain fused to the thrombopoietin receptor (cMPL) endodomain. DSR engages 4-1BB that is transiently upregulated upon TCR stimulation eliciting signal 2 and simultaneously activates cMPL-driven STAT3/5 phosphorylation providing signal 3. DSR increases the expansion of T cells, preserving their effector function and an effector-associated transcriptional profile upon repeated antigen stimulation. DSR arming significantly improves in vivo antitumor activity of T cells redirected to cancer through engineered TCRs or soluble T-cell engagers in diverse xenograft tumor models by enhancing T cell expansion and persistence post-infusion. These results demonstrate broad utility and establish DSR as a modular receptor for the effective and synchronized delivery of signals 2 and 3 to support TCR-based immunotherapies.

immunology↗

Engineering CAR-Vδ2 T cells to boost persistence and anti-tumor function

Chimeric antigen receptor (CAR)-modified V{delta}2 T cells are an attractive therapeutic cell platform for cancer immunotherapy. However, their clinical efficacy is limited by short in vivo persistence due to insufficient cytokine support and high susceptibility to activation-induced cell death (AICD). Through comparison of membrane-bound (mb) cytokines, we identified mbIL-18 to support superior anti-tumor activity of CAR-V{delta}2 T cells in vitro and in vivo. To reduce constitutive surface exposure of IL-18 and enable antigen-driven signal 3, we fused MyD88 - the key IL-18R signaling mediator - to an extracellular domain of Fas (Fas88). Antigen stimulation-induced FasL engagement of Fas88 triggered IL-18 signaling while simultaneously protecting V{delta}2 T cells from AICD. Fas88-armed human CAR-V{delta}2 T cells produced superior yet stimulation-dependent in vivo expansion and functional persistence in xenograft models of hematologic and solid malignancies. Together, these findings highlight the importance of IL-18 signaling and AICD resistance for CAR-V{delta}2 T cell activity, enabling a single-transgene modification to limit inflammatory risk and facilitate clinical translation.

synthetic biology↗