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Hoyt-Miggelbrink, A.

Publications and source records attributed to Hoyt-Miggelbrink, A..

2 recordsLinked to original sources

TNFR2 loss leads to decreased TOX expression in T cells without affecting TIM3 and improves responses to tumor and chronic LCMV

Exhaustion represents a collection of programmed T cell differentiation states and an important mode of T cell dysfunction. T cell progression from progenitor to terminal exhaustion is associated with upregulation of the transcription factor TOX and expression of TIM3. Our understanding of factors regulating TOX expression and the transition from progenitor to terminal exhaustion, however, remains incomplete. We reveal here that T cell upregulation of tumor necrosis factor receptor type II (TNFR2) coincides with the gain of phenotypic markers and functions reflective of terminal exhaustion. Meanwhile, knocking out TNFR2 affords a novel population of T cells that express TIM3 but possess diminished TOX levels and functional characteristics of both progenitor and terminally exhausted cells. TIM3+ TNFR2 KO T cells exhibit reduced exhaustion transcriptional programs and enhanced AP1 pathway signatures. Finally, TNFR2 KO mice demonstrate improved T cell-dependent control of tumor and chronic lymphocytic choriomeningitis (cLCMV) infection, while pharmacologic antagonism of TNFR2 licenses responses to checkpoint blockade in multiple subcutaneous and intracranial tumor models.

immunology↗

Intracranial tumors elicit systemic sympathetic hyperactivity that limits immunotherapeutic responses

Intracranial tumors present unique challenges for immunotherapy. These can include both local and systemic modes of immune suppression whose mechanistic underpinnings are incompletely understood. Here, we reveal that tumors harbored intracranially elicit systemic increases to circulating catecholamine levels, with the resultant chronic sympathetic hyperactivity driving T cell dysfunction and limiting immunotherapeutic success. Conversely, treatment with {beta}-adrenergic blockade increases NF-{kappa}B activity in immune cells, restores T cell polyfunctionality, modifies the tumor microenvironment, and licenses immune-based therapies in murine models of glioblastoma (GBM) to extend survival. Extended survival is also observed in GBM patients having received {beta}-adrenergic blockade, as well as in patients with melanoma and lung cancer brain metastases who received {beta}-blockade alongside concomitant immune checkpoint inhibition. While {beta}-blockade also impacts outcomes in the setting of extracranial disease, the benefits are especially pronounced in patients harboring intracranial disease burdens. These data suggest that sympathetic hyperactivity facilitates systemic immune dysfunction in the setting of intracranial tumors, specifically and advance a role for {beta}-adrenergic blockade in licensing immunotherapeutic responses within the intracranial compartment.

immunology↗