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Sclafani, C. R.

Publications and source records attributed to Sclafani, C. R..

2 recordsLinked to original sources

ATR kinase inhibitors induce mitochondrial fission in CD8+ T cells and impair immune memory in vivo

The DNA damage response kinase ATR restrains CDK1 activity during S and G2 phases of the cell cycle, confining CDK1-driven processes to mitosis. ATR kinase inhibitors were originally developed to potentiate chemotherapy-induced DNA damage at stalled replication forks and to disrupt DNA damage-induced cell cycle checkpoints. Recent evidence, however, reveals that these inhibitors also disrupt cell cycle organization in cells that have not sustained any DNA damage. We show that ATR kinase inhibitors potently trigger unscheduled mitochondrial fission, causing loss of mitochondrial mass in actively dividing CD8+ T cells that persists in memory CD8+ T cells. Moreover, ATR inhibition during the peak of CD8+ T cell expansion in a mouse model of LCMV Armstrong infection impairs the formation of immune memory. These findings carry significant clinical implications. ATR kinase inhibitors are currently being evaluated in clinical trials in combination with chemotherapy, radiation, and immune checkpoint inhibitors in patients where anti-tumor immune responses are recognized as a determinant of durable response. Our results identify an unexpected consequence of ATR inhibition that disrupts cellular metabolism with broad implications for both preclinical research and clinical application.

cancer biology↗

Uracil-DNA glycosylase deficiency is associated with repressed tumor cell-intrinsic inflammatory signaling and altered sensitivity to exogenous interferons

2-deoxyuridine (dU) is a common DNA lesion resulting from cytosine deamination and from dUMP incorporation by DNA polymerases, both of which are prevalent in cancer. The primary mechanism that repairs dU lesions in genomic DNA is base excision repair initiated by Uracil-DNA Glycosylase 1 (UNG1). We generated Ung knockout mouse B16 melanoma cells to investigate the consequences of UNG deficiency in a well-characterized, immunoproficient, syngeneic mouse cancer model. We show that UNG-deficient ({Delta}UNG) B16 tumors have altered growth kinetics in vivo and that their delayed growth is T-cell dependent. Immune profiling revealed reduced CD8+ T cell infiltration but augmented CD4+ Th1 responses in {Delta}UNG tumors. In vitro, {Delta}UNG tumor cells exhibit strongly suppressed cell-intrinsic type-I interferon, type-II interferon, and inflammatory signaling gene expression signatures as well as altered cytokine and chemokine secretion. In vivo, {Delta}UNG tumors exhibit a modified inflammatory cytokine and chemokine milieu. Furthermore, {Delta}UNG tumor cells have altered sensitivity to exogenous interferons in vitro, with increased sensitivity to IFN-{gamma} but decreased sensitivity to IFN-/{beta}. Collectively, our data show that tumor cell-specific UNG deficiency results in an altered tumor microenvironment in vivo and provide proof-of-concept data for the use of UNG inhibitors to modulate inflammatory pathways in tumors.

cancer biology↗