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Biology subjects

Feldmann, L.

Publications and source records attributed to Feldmann, L..

2 recordsLinked to original sources

CAR-MACROPHAGES ACTIVATE ANTI TUMOR T CELLS IN THE ABSENCE OF PHAGOCYTOSIS

Macrophages are highly abundant within the tumor microenvironment and serve as an essential bridge between innate and adaptive immune responses. Thus, they have emerged as promising candidates for chimeric antigen receptor (CAR)-based therapeutic strategies. Previous studies demonstrated that adenovirally-transduced CAR-macrophages (CAR-M), used in clinical trials, can perform tumor cell phagocytosis, reshape the tumor microenvironment towards a proinflammatory state, and promote host T cell activation. However, how early interactions between CAR-M and tumor cells shape subsequent T cell effector functions remains poorly understood. Particularly, uncoupling the adenoviral-induced proinflammatory phenotype from CAR-M effector functions remains to be dissected. Here, using phagocytosis-optimized CAR-Ms, we demonstrated that T cells are crucial mediators of CAR-M therapeutic efficacy. Mechanistically, we identify that CAR-M-derived cytokines and chemokines are key drivers of T cell functions while antigen cross presentation appears largely dispensable. Dynamic imaging of CAR-M-tumor cell interactions revealed heterogenous phagocytic abilities, regardless of contact duration. Finally, we show that non-phagocytic interactions can instruct pro-inflammatory macrophage repolarization and subsequent T cell activation. Altogether, these findings define an alternative mode of CAR-M action in which CAR engagement alone, independently of target cell uptake, is sufficient to enhance T cell functions. Our study underscores the importance of non-phagocytic CAR signaling as an additional mechanism for CAR-M effector functions opening new avenues for the design of next generation CAR for macrophage-based therapies.

immunology↗

Structure and function of otoferlin, a synaptic protein of sensory hair cells essential for hearing

Our sense of hearing relies upon speedy synaptic transmission of sound information from cochlear inner hair cells (IHCs) to spiral ganglion neurons (SGNs). To accomplish this, IHCs employ a sophisticated presynaptic machinery including the multi-C2-domain protein otoferlin which is affected by human deafness mutations. Otoferlin is essential for IHC-exocytosis but how it binds Ca2+ and the target membrane to serve synaptic vesicle (SV) tethering, docking and fusion remained unclear. Here, we obtained cryo-electron-microscopy structures of Ca2+-bound otoferlin and employed molecular dynamics simulations of membrane binding. We show that membrane binding involves C2B-C2G-domains and repositions C2F- and C2G-domains. Progressive disruption of Ca2+-binding by the C2D-domain in mice increasingly altered synaptic sound encoding and eliminated the Ca2+-cooperativity of SV-exocytosis, indicating that this Ca2+-cooperativity reflects binding of several Ca2+-ions to otoferlin. Together, our findings elucidate molecular mechanisms underlying otoferlin-mediated SV-docking and support a role of otoferlin as Ca2+-sensor of SV-fusion in IHCs.

neuroscience↗