Search bioRxiv⌕ Search

Biology subjects

Raute, K.

Publications and source records attributed to Raute, K..

2 recordsLinked to original sources

Kidins220 promotes thymic iNKT cell development by reducing TCR signals, but enhances TCR signals in splenic iNKT cells

The stepwise development of thymic invariant natural killer T (iNKT) cells is controlled by the TCR signal strength. The scaffold protein Kinase D interacting substrate of 220 kDa (Kidins220) binds to the TCR regulating TCR signaling. T cell-specific Kidins220 knock-out (T-KO) mice contain severely decreased iNKT numbers. Very early in iNKT development TCR signals are reduced in the T-KO. In later steps, TCR signaling is increased in the T-KO leading to enhanced apoptosis of iNKT cells. Kidins220s absence affects the iNKT1 subset most as it requires the weakest TCR signals for development. We also show that in iNKT1 development, weak TCR signals promote the progressive loss of CD4. In the periphery, Kidins220 switches its role back to promoting TCR signaling as splenic T-KO iNKT cells produce less cytokines and show reduced TCR signaling after in vivo stimulation with -galactosylceramide. In conclusion, Kidins220 promotes or inhibits TCR signaling depending on the developmental context. summary statementWe demonstrate that the transmembrane scaffold protein Kidins220 switches its role twice in iNKT cell biology: from a positive to a negative regulator of TCR signal strength during thymic development and back to a positive regulator in the periphery.

immunology↗

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↗