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Biology subjects

Kistner, K. M.

Publications and source records attributed to Kistner, K. M..

2 recordsLinked to original sources

Breast cancer stem cell-derived tumors escape from γδ T cell immunosurveillance in vivo by modulating γδ T cell ligands

Triple negative breast cancer (TNBC) lacks targeted therapy options. TNBC is enriched in breast cancer stem cells (BCSCs), which play a key role in metastasis, chemoresistance, relapse and mortality. {gamma}{delta} T cells hold great potential in immunotherapy against cancer, and might be an alternative to target TNBC. {gamma}{delta} T cells are commonly observed to infiltrate solid tumors and have an extensive repertoire of tumor sensing, recognizing stress-induced molecules and phosphoantigens (pAgs) on transformed cells. We show that patient-derived triple negative BCSCs are efficiently recognized and killed by ex vivo expanded {gamma}{delta} T cells from healthy donors. Orthotopically xenografted BCSCs, however, were refractory to {gamma}{delta} T cell immunotherapy. Mechanistically, we unraveled concerted differentiation and immune escape: xenografted BCSCs lost stemness, expression of {gamma}{delta} T cell ligands, adhesion molecules and pAgs, thereby evading immune recognition by {gamma}{delta} T cells. Indeed, neither pro-migratory engineered {gamma}{delta} T cells, nor anti-PD-1 checkpoint blockade significantly prolonged overall survival of tumor-bearing mice. BCSC immune escape was independent of the immune pressure exerted by the {gamma}{delta} T cells, and could be pharmacologically reverted by Zoledronate or IFN- treatment. These results pave the way for novel combinatorial immunotherapies for TNBC.

immunology↗

Accumulation of the GSK3 target protein β-catenin is lethal for B cell precursors and malignant B cells

Glycogen synthase kinase 3 (GSK3) is a ubiquitously expressed kinase involved in a myriad of biological processes. Although GSK3 mediated phosphorylation has been shown to induce the degradation of many pro-survival and pro-proliferation factors, cancer cells of different origin show reduced proliferation or survival after GSK3 inhibition. Our current understanding of the role GSK3 plays in normal mature B cells, B cell precursors and transformed B cells is incomplete and does not allow to assess whether GSK3 inhibitors can be used to treat B cell derived malignancies. Here we identify {beta}-catenin as the major factor driving GSK3-inhibition induced changes in B cells. We show that {beta}-catenin accumulation has opposing effects on cell metabolism and survival in mature B cells and B cell precursors. Moreover, we demonstrate that {beta}-catenin destabilizes the commitment to the B cell lineage. In summary, our study identifies {beta}-catenin induced signaling as a factor that can be exploited to limit the survival of malignant B cells.

immunology↗