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Turyasingura, G.

Publications and source records attributed to Turyasingura, G..

2 recordsLinked to original sources

The solid tumor microenvironment changes the hierarchy of CD155 and CD112 receptors, shaping checkpoint blockade outcome

Reproducing a physiologically relevant tumor microenvironment in vitro is essential for developing effective immunotherapeutic treatments. By integrating the use of combinatorial receptor blockade and organoid models we provide a deep functional understanding of CD155 and CD112 receptors in solid tumors and their impact on cellular immunotherapy and infiltration. CD226 showed plasticity in response to the environment, being able to switch between CD155 and CD112 depending on the ligand availability. In addition, CD226 drove NK cell infiltration into tumor tissues via CD155 and CD112 ligation, with CD226-CD112 interaction specifically promoting migration from the periphery to the core. Downregulation of CD155 and TIGIT induced by the tumor microenvironment and previous drug exposure reduced the long-term efficacy of TIGIT blockade. Taken together, our findings point towards using CD112R blockade in primary tumors to simultaneously enhance NK cell killing activity and promote infiltration into the tumor core via CD226 and CD112 interaction. ONE SENTENCE SUMMARYTumors shape the hierarchy of CD155-CD112 receptors, reducing TIGIT blockade efficacy, while CD226 drives NK infiltration and shows binding plasticity

immunology↗

Natural killer cell function in children with severe malaria differs according to malaria transmission intensity

Memory-like Natural Killer (NK) cells with enhanced antibody-dependent cellular cytotoxicity (ADCC) have correlated with protection from uncomplicated malaria in prior studies. However, the role of NK cells in severe malaria (SM) has not been characterized. In Ugandan sites with moderate and low malaria transmission, we evaluated NK cell (CD56bright, CD56dim, CD56neg) phenotype and ADCC function by flow cytometry in children <5 years of age with SM (n=21) and control community children (CC, n=19). Children with SM had similar total NK cell counts to CC. Children with SM had a higher proportion of LILRB1+ NK cells than CC. Level of malaria transmission in an area was related to NK cell function. In the low malaria transmission only, children with SM had a higher proportion than CC of NK cells that degranulated, whereas children with SM from both low and moderate malaria transmission areas had lower IFN{gamma} production than CC. We next evaluated functional Boolean gating for degranulation and IFN{gamma} production (CD107a/IFN{gamma}-, CD107a-/IFN{gamma}, and CD107a/IFN{gamma}) in relation to memory-like and checkpoint/exhaustion NK cell markers in low and moderate malaria transmission SM and CC groups. We found there was a significant increase in degranulating only NK cells (CD107a+, IFN{gamma}-) in children with SM compared to CC solely in the low malaria transmission area. However, there was a significant decrease in NK cells that produced IFN{gamma} but did not degranulate (CD107a-, IFN{gamma}+) in children with SM compared to CC in both low and moderate transmission areas. Our data reveal compound functional differences in NK cells among children with SM living in areas of low versus moderate malaria transmission; however, a consistent finding is reduced NK cell IFN{gamma} production in SM, regardless of transmission intensity.

immunology↗