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Mahanti, S.

Publications and source records attributed to Mahanti, S..

2 recordsLinked to original sources

Discovery of a Small-Molecule mTORC1 Pathway Activator that Enhances Adoptive T-Cell Therapy via Immuno-metabolic Reprogramming of CD8+ T Cells

Adoptive cell therapy (ACT) has transformed cancer immunotherapy; however, its clinical efficacy remains limited by progressive T cell dysfunction and inadequate metabolic fitness acquired during ex vivo expansion and within the tumor microenvironment. Here, we report the discovery of AS-3, a first-in-class small-molecule activator that enhances the therapeutic competence of CD8 T cells through RAPTOR-dependent mTORC1 activation. Identified by phenotypic screening of an in-house library of pharmacologically relevant scaffolds and subsequent medicinal chemistry optimization, AS-3 markedly increased effector cytokine production while preserving T cell viability. Mechanistically, AS-3 enhanced phosphorylation of mTORC1 downstream effectors, promoted glycolytic and mitochondrial metabolism, and sustained pathway activity under rapamycin-mediated inhibition. Transcriptomic profiling of activated human CD8 T cells revealed coordinated enrichment of mTORC1 signalling, oxidative phosphorylation, glycolysis, proliferative programs, and cytotoxic effector gene networks, consistent with comprehensive immunometabolic reprogramming. Genetic silencing of RAPTOR attenuated both mTORC1 signalling and cytokine induction, establishing pathway dependency. Ex vivo conditioning with AS-3 significantly improved antitumor efficacy in two independent adoptive T-cell therapy models, accompanied by enhanced persistence, reduced exhaustion, and superior effector function. Together, these findings establish pharmacological activation of the RAPTOR-mTORC1 axis as a strategy to generate metabolically resilient T cells and provide a clinically translatable approach to improving the durability and efficacy of next-generation ACT.

immunology↗

Mettl3-catalyzed m6A methylation determines CD8+ T cell differentiation fate in tumor

The heterogeneity in patient responses to immune checkpoint blockade (ICB) is dictated by the relative abundance of exhausted CD8 T cell (Tex) subsets with distinct therapeutic responsiveness. Progenitor exhausted (pTex) cells remain sensitive to ICB, whereas terminally exhausted (tTex) cells are refractory; however, the molecular cues that bias differentiation toward these divergent fates remain poorly defined. Here, we identify the RNA methyltransferase Mettl3 as a central regulator of Tex fate. Across murine tumor models, human T cells, and adoptive transfer systems, Mettl3 expression is selectively enriched in tTex cells and inversely correlated with TCF1 pTex populations. Mechanistically, Mettl3 drives terminal exhaustion by stabilizing DNMT3B transcripts via mA modification, enforcing CpG methylation and chromatin compaction at memory-associated loci. Inhibition of the Mettl3-Dnmt3b axis reprograms chromatin accessibility toward memory-like states, thereby preserving progenitor potential and effector function. Consequently, T cells lacking Mettl3-Dnmt3b activity persist longer, mount robust recall responses, and achieve superior tumor control with enhanced responsiveness to PD-1 blockade. These findings establish the Mettl3-mA-Dnmt3b axis as a molecular rheostat of CD8 T cell fate, coupling epitranscriptomic regulation to epigenetic remodeling, and reveal a tractable pathway to improve the durability of cancer immunotherapy.

immunology↗