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Florentin, M.

Publications and source records attributed to Florentin, M..

2 recordsLinked to original sources

Infection-specific long-chain fatty acid metabolism as a broad anti-enterovirus target

Enteroviruses are arguably the most numerous group of viruses infecting humans. While most enterovirus infections are benign and self-resolving, their sheer number inevitably increases the chances of multiple complications. The diversity of enteroviruses means that the development of vaccines is only economically feasible against a select few, and no direct-acting or host-targeted anti-virals are approved to treat enteroviral infections, largely due to the rapid development of resistance against all experimental drugs. Here, we explored a universal property of enterovirus infection - a massive upregulation of phospholipid synthesis as a target for anti-viral interventions. The increased phospholipid synthesis consumes endogenously- and exogenously-derived long-chain fatty acids (LCFA). We demonstrate that polyunsaturated LCFAs can have a broad anti-enteroviral effect, affecting multiple steps of the virus life cycle. The anti-viral activity of LCFAs did not strictly depend on the degree of unsaturation or their capacity to induce lipid peroxidation but significantly correlated with their conformation. This suggests that their incorporation into the phospholipid molecules makes the replication organelle membranes incapable of properly accommodating viral replication machinery. Accordingly, the inhibition of neutral lipid synthesis promoted LCFAs retargeting to the membranes in infected cells and increased their anti-viral potency. We show that this approach is effective against diverse enteroviruses in different cell types, including differentiated primary cells, and that attempts to establish viruses resistant to such treatment were unsuccessful.

microbiology↗

Lymphotoxin-driven cancer cell eradication by tumoricidal CD8+ tumor-infiltrating lymphocytes

Tumor-infiltrating lymphocyte (TIL) therapy is FDA-approved for patients with treatment-resistant advanced melanoma, but the TIL subpopulations critical for tumor eradication remains incompletely understood. Using patient-derived TIL-melanoma co-cultures, we identified and characterized a novel subset of CD8+ TIL, capable of class I HLA-independent cancer cell lysis. The lymphotoxin {beta} receptor (LT{beta}R) and interferon (IFN) sensing pathways were nominated as key determinants of TIL-mediated cancer cell killing from a whole-genome, loss-of-function CRISPR screen. Validation studies confirmed that dual LT{beta}R and IFN sensing is necessary and sufficient for cancer cell lysis, and that expanded CD8+ TIL express high lymphotoxin {beta} (LTB) and upregulate lymphotoxin (LTA) upon coculture with cancer cells. Leveraging paired scRNA-seq and scTCR-seq data, we confirmed that enrichment of LTB+CD8+ T cells is associated with clinical response to TIL, and that LTB+CD8+ TIL are expanded from putative neoantigen-reactive, LTBlo CD8+ T cells in resected tumors. SignificanceWe have uncovered a previously unrecognized mechanism of TIL-mediated tumor eradication, providing mechanistic insights into the role of LTBR/IFN signaling in TIL-mediated cancer cell killing, and potentially offering insights into novel strategies to isolate, enrich, and expand tumoricidal TIL or augment specific TIL functions to enhance tumor control.

cancer biology↗