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Cho, N. W.

Publications and source records attributed to Cho, N. W..

3 recordsLinked to original sources

Epigenetic reprogramming shapes the cellular landscape of schwannoma

Cell state evolution underlies tumor development and response to therapy1, but mechanisms specifying cancer cell states and intratumor heterogeneity are incompletely understood. Schwannomas are the most common tumors of the peripheral nervous system and are treated with surgery and ionizing radiation2-5. Schwannomas can oscillate in size for many years after radiotherapy6,7, suggesting treatment may reprogram schwannoma cells or the tumor microenvironment. Here we show epigenetic reprogramming shapes the cellular landscape of schwannomas. We find schwannomas are comprised of 2 molecular groups distinguished by reactivation of neural crest development pathways or misactivation of nerve injury mechanisms that specify cancer cell states and the architecture of the tumor immune microenvironment. Schwannoma molecular groups can arise independently, but ionizing radiation is sufficient for epigenetic reprogramming of neural crest to immune-enriched schwannoma by remodeling chromatin accessibility, gene expression, and metabolism to drive schwannoma cell state evolution and immune cell infiltration. To define functional genomic mechanisms underlying epigenetic reprograming of schwannomas, we develop a technique for simultaneous interrogation of chromatin accessibility and gene expression coupled with genetic and therapeutic perturbations in single-nuclei. Our results elucidate a framework for understanding epigenetic drivers of cancer evolution and establish a paradigm of epigenetic reprograming of cancer in response to radiotherapy.

cancer biology↗

T cell-instructed inflammation drives immune checkpoint inhibitor therapy resistance

Resistance to immune checkpoint inhibitors (ICIs) is common, even in tumors with T cell infiltration. We thus investigated consequences of ICI-induced T cell infiltration in the microenvironment of resistant tumors. T cells increased in ICI-resistant tumors following treatment as did neutrophils, in contrast to ICI-responsive tumors. Resistant tumors were distinguished by high expression of IL-1 Receptor 1 (IL1R1), enabling a synergistic response to IL-1 and TNF to induce G-CSF, CXCL1, and CXCL2 via NF-{kappa}B signaling, supporting neutrophils. Perturbation of this inflammatory resistance circuit sensitized tumors to ICIs. Paradoxically, T cells drove this resistance circuit via TNF both in vitro and in vivo. Evidence of this inflammatory resistance circuit and its impact also translated to human cancers. These data support a novel mechanism of ICI resistance, wherein treatment-induced T cell activity can drive resistance in tumors responsive to IL-1 and TNF, with important therapeutic implications. Statement of SignificanceAlthough T cell-infiltrated cancers are frequently resistant to immune checkpoint inhibitor therapies, mechanisms of resistance beyond T cell exhaustion remain unclear. Here, we reveal the functional significance of tumor- infiltrating T cells in resistant tumors, which surprisingly instruct immunosuppressive inflammation in mouse and human cancers responsive to IL-1 and TNF.

immunology↗

Transient dendritic cell activation diversifies the T cell response to acute infection

The precise timing of T cell priming during infection remains unclear. Here, we mapped the cellular dynamics of all immune lineages during acute infection with Listeria monocytogenes (Lm). We identified highly transient DC activation 2 days post-infection that functions as a critical time window for priming effector T cells. Regulation of this transient state was mediated by DC extrinsic IFN{gamma} provided by lymphocytes. Furthermore, antigen-specific T cells that arrive late to the site of priming and miss peak DC activation acquire only memory T cell fates. This temporal regulation of fate is recapitulated by CD8+ DCs ex vivo, suggesting that shifts in activation state of a single antigen presenting cell population alter T cell fates. These results uncover a novel mechanism for temporal regulation of T cell differentiation during a dynamic immune response to acute infection. One-Sentence SummaryThe immune system generates a balanced protective response through rapidly shifting activation states and recruitment of new cells into an ongoing inflammatory landscape.

immunology↗