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bioRxiv · 10.64898/2026.03.09.709648

Coordinated IL-2 and TGF-β Signaling via a Novel Fusion Protein Selectively Expands and Activates Regulatory T Cells

Abstract

Establishing immune tolerance requires the integration of cytokine signals that favor regulatory T cell (Treg) function over effector differentiation, yet how such coordination can be achieved selectively in vivo remains incompletely defined. Regulatory T cells are essential for maintaining immune homeostasis and peripheral tolerance, and both interleukin-2 (IL-2) and transforming growth factor-{beta} (TGF-{beta}) contribute to Treg activation, differentiation, and stability in a highly context-dependent manner. Here, we examine the consequences of coordinated IL-2 and TGF-{beta}3 signaling using an engineered cytokine construct combining attenuated IL-2 with receptor-masked TGF-{beta}3. In vitro, attenuated IL-2/TGF-{beta}3 signaling promoted conversion of naive CD4 T cells into Foxp3 induced Tregs, expanded endogenous Tregs, and suppressed inflammatory cytokine production by memory and effector CD4 T cells. In vivo, a single administration selectively increased the frequency of CD4Foxp3 regulatory T cells exhibiting an activated and stable phenotype, while minimally activating Foxp3- conventional CD4 T cells relative to IL-2 alone. In a Treg-deficiency-driven adoptive transfer model of autoimmunity, early exposure to coordinated IL-2/TGF-{beta}3 signaling enhanced Treg activation, reduced tissue infiltration by autoreactive T cells, and conferred sustained protection from autoimmune gastritis in the absence of continued treatment. Together, these findings identify a mode of coordinated IL-2 and TGF-{beta}3 signaling sufficient to stabilize regulatory T cell responses and promote immune tolerance while limiting activation of conventional CD4 T cells, highlighting signal integration as a determinant of tolerogenic immune regulation in vivo. One Sentence SummaryCUE-401 coordinates IL-2 and TGF-{beta} signaling to expand and activate regulatory T cells and restrain autoimmune responses.

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BibTeXRIS

Jackson, N., Carrero, J., Yeung, K., Needham, E., Christie, E., Yakobian, N., Pretorius, C., Hoft, S., Foley, K., Ford, E., Low, S., Seidel, R., Suri, A., Girgis, N., Quayle, S., DiPaolo, R. J.. 2026-03-11. Coordinated IL-2 and TGF-β Signaling via a Novel Fusion Protein Selectively Expands and Activates Regulatory T Cells. https://doi.org/10.64898/2026.03.09.709648

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