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Tedgui, A.

Publications and source records attributed to Tedgui, A..

2 recordsLinked to original sources

Targeting IL-2 to inflamed tissues via oxidation-specific epitopes enables third-generation bispecific IL-2 therapeutics

Interleukin-2 (IL-2) is essential for the survival and activation of regulatory T cells (Tregs). Low-dose native IL-2 (IL-2LD) therapy restores immune regulation in vivo and has shown reproducible clinical benefit across multiple autoimmune, inflammatory, and neuroimmune diseases. Attempts to improve IL-2 through engineered variants (muteins) have mainly focused on enhancing Treg selectivity by reducing IL-2 receptor {beta}-chain binding, but this strategy profoundly diminishes biological potency, likely contributing to the limited clinical efficacy of IL-2 muteins. Here, we develop a ''third-generation IL-2'' that combines site-specific targeting and bifunctionality. We generated a bivalent fusion protein linking IL-2 to a single-chain antibody recognizing oxidation-specific epitopes (OSEs), which are abundantly expressed at inflamed sites. Targeting OSEs provides not only site-specific localization, but also true bifunctionality as both anti-OSE antibodies and IL-2LD independently show therapeutic benefit in limiting inflammation. We first show that IL-2IT has bifunctional biological activities in vitro. In vivo, IL-2IT had increased specificity for Treg over Teff activation, which we attribute to a conformation-dependent modulation of IL-2 receptor engagement. Importantly, IL-2IT provided precise delivery to inflamed tissues in models of psoriasis and colitis. Altogether, this resulted in superior therapeutic benefit in multiple clinical settings, including in atherosclerosis models. Thus, our strategy illustrates a generalizable approach to cytokine engineering that preserves native signaling while achieving spatial control. Specifically, our findings validate OSE targeting as an efficient strategy to guide therapeutics to sites of inflammation and establish OSE-IL-2 as a promising bispecific Treg engager for treating inflammation.

immunology↗

Mucosal-Associated Invariant T Cells Promote Atherosclerosis Through Monocyte-Driven Inflammation

Mucosal-associated invariant T (MAIT) cells are unconventional T lymphocytes that may contribute to inflammatory responses, although their specific role in atherosclerosis remains poorly understood. In this study, we identified MAIT cells within human atherosclerotic plaques and found that they were significantly enriched among CD3 T cells in plaques compared to matched peripheral blood samples. MAIT cells within plaques exhibited an activated phenotype and showed upregulation of genes associated with inflammation and cellular activation, compared to circulating MAIT cells from the same patients. Using murine models, we found that low-density lipoprotein receptor (Ldlr)-/- mice carrying the CAST locus, which confers naturally higher frequencies of MAIT cells, displayed increased MAIT cell accumulation in both the liver and atherosclerotic plaques when fed a high-cholesterol diet. In contrast, MAIT cell-deficient Ldlr-/-CAST MR1-/- mice exhibited a reduced atherosclerotic burden, diminished liver fibrosis, smaller myocardial infarcts following coronary artery ligation, without significant changes in plasma cholesterol levels. These atheroprotective effects were accompanied by lower monocyte counts in the bone marrow and blood, as well as reduced plaque macrophage accumulation in the plaques. Furthermore, deletion of CCR2, which impairs monocyte mobilization, abrogated the pro-atherogenic effects of MAIT cells, indicating that MAIT-driven atherogenesis occurs through a monocyte-dependent mechanism. Taken together, these findings identify MAIT cells as active contributors to vascular inflammation and position them as potential therapeutic targets for atherosclerosis and its complications.

immunology↗