Enforcing mTORC1 activity in therapeutic CD4+ T cells promotes persistence but eventual immune exhaustion
Abstract
Abstract There is substantial interest in developing novel engineering strategies to promote the sustained metabolic fitness of therapeutic T cells. We previously showed that overexpression of RAS homologue enriched in brain (RHEB), a positive regulator of mammalian target of rapamycin complex 1 (mTORC1), promotes aerobic glycolysis and increases the anti-tumor functions of effector CD8+ T cells. To address whether these effects are conserved in CD4+ T cells, we have now examined how enforced activation of mTORC1 activity affects CD4+ T cell differentiation and function. Rheb overexpression induced a more balanced metabolic shift in CD4+ T cells than in CD8+ T cells, with increases in both oxidative phosphorylation and aerobic glycolysis. Although Rheb overexpression initially increased CD4+ T cell activation and proliferation in vitro, the underlying population architecture was complex, involving a shift to both more proliferative, cytotoxic-like cell states as well as more quiescent cell clusters characterised by counter-regulation of mTORC1 activity. Following adoptive transfer, tumor antigen-specific Rheb-transduced CD4+ T cells showed greater persistence but were less efficient than controls in eliminating tumor. This functional deficiency could be explained by a greater propensity of persisting Rheb-transduced CD4+ T cells to develop features of immune exhaustion, as evidenced by expression of multiple co-inhibitory receptors and impaired proliferation upon tumor rechallenge. Together, these data demonstrate the dynamic population response to tuning of T cell mTORC1 and the need to separately appraise cellular outputs of therapeutic CD4+ versus CD8+ T cells when metabolic pathways are manipulated by the same method.
Article Details
Journal Info
The Journal of Immunology
American Association of Immunologists
Authors (10)
Francesca Sillito
Cancer Institute, University College London , London,
Elisa Armbrecht
1MRC Weatherall Institute of Molecular Medicine, University of Oxford, Oxford, United Kingdom
Aideen T O’Neill
Weatherall Institute of Molecular Medicine, University of Oxford , Oxford,
Andrew McIntyre
Melville Nyatondo
Weatherall Institute of Molecular Medicine, University of Oxford , Oxford,
Angelika Holler
Lauren A Callender
Translational Medicine and Therapeutics, William Harvey Research Institute, Barts and The London School of Medicine and Dentistry, Queen Mary University London , London,
Sian M Henson
Hans Stauss
Ronjon Chakraverty
University of Oxford