Published February 5, 2026 | Version 1.0
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T-Cell-Derived Exosomes from Multicore Granules Exhibit Superior Caspase-3-Mediated Tumor-Suppressive Activity Compared to those from Multivesicular Bodies

  • 1. ROR icon Saarland University
  • 2. University of Saarland

Description

Small extracellular vesicles (sEVs) derived from cytotoxic T lymphocytes (CTLs) are emerging as potential mediators of antitumor immunity; however, their subcellular origins and functional properties remain incompletely defined. In this study, we investigated the intracellular routes and cytotoxic potential of CTL-derived exosomes. Using correlative light and electron microscopy, we discovered that CTL-derived exosomes originate from both classical multivesicular bodies (MVBs) and the recently identified multi core granules (MCGs). Through total internal reflection fluorescence microscopy, we demonstrated that, in contrast to MVB-derived exosomes, MCG-derived exosomes are released at the immunological synapse in a stimulus-dependent manner. To enable functional characterization, we developed a scalable primary cell culture method for the isolation of high-purity exosomes. Super-resolution microscopy revealed significant heterogeneity in exosome size and tetraspanin composition. Notably, MCG-derived exosomes exhibited fivefold higher cytotoxic activity than MVB-derived exosomes, inducing apoptosis in tumor cells via a caspase 3-dependent mechanism. These findings reveal that CTLs exploit distinct secretory pathways to release heterogeneous exosome populations with differential cytotoxic capacities, offering new insights into CTL-mediated immune responses and providing a basis for the development of novel exosome-based immunotherapies.

Notes

This work was supported by grants from the Deutsche Forschungsgemeinschaft, collaborative research center (SFB 894 (ID number 157660137), subproject A9 (to U.B.), A10 (to J.R, and  A14 (to V.F.)), ID number 203827099 (to V.F.), ID number 469256325 (to Markus R. Meyer, Homburg) and ID number 445684568 (to C.F.-T.).  European Commission (ERC-2021-SyG_951329 to the Department of Cellular Neurophysiology, Saarland University and M.L.D.). 

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Is referenced by
Publication: 10.1002/jev2.70239 (DOI)

Funding

Deutsche Forschungsgemeinschaft
SFB 894 157660137
Deutsche Forschungsgemeinschaft
203827099
Deutsche Forschungsgemeinschaft
469256325
European Research Council
ATTACK ERC-2021-SyG_951329