4.8 Article

Galectin-9 promotes natural killer cells activity via interaction with CD44

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FRONTIERS IN IMMUNOLOGY
卷 14, 期 -, 页码 -

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FRONTIERS MEDIA SA
DOI: 10.3389/fimmu.2023.1131379

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galectin-9; cancer; COVID-19; cytotoxic effector molecules; cytokines

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In this study, the researchers found that Gal-9-positive NK cells were more abundant in tissues, particularly in the liver, compared to the negative control group. These Gal-9-positive NK cells showed higher levels of cytotoxic effector molecules and cytokines. The interaction between Gal-9 and CD44 was shown to activate NK cells and activate related signaling pathways. Interestingly, COVID-19 patients exhibited enhanced IFN-gamma expression in Gal-9-positive NK cells. These findings highlight the important role of Gal-9 in NK cell activation and suggest its potential as a therapeutic target for modulating NK cell effector functions.
Natural killer (NK) cells are a potent innate source of cytokines and cytoplasmic granules. Their effector functions are tightly synchronized by the balance between the stimulatory and inhibitory receptors. Here, we quantified the proportion of NK cells and the surface presence of Galectin-9 (Gal-9) from the bone marrow, blood, liver, spleen, and lungs of adult and neonatal mice. We also examined the effector functions of Gal-9(+)NK cells compared with their Gal-9(-) counterparts. Our results revealed that Gal-9(+)NK cells are more abundant in tissues, in particular, in the liver than in the blood and bone marrow. We found Gal-9 presence was associated with enhanced cytotoxic effector molecules granzyme B (GzmB) and perforin expression. Likewise, Gal-9 expressing NK cells displayed greater IFN-gamma and TNF-alpha expression than their negative counterparts under hemostatic circumstances. Notably, the expansion of Gal-9(+)NK cells in the spleen of mice infected with E. coli implies that Gal-9(+)NK cells may provide a protective role against infection. Similarly, we found the expansion of Gal-9(+)NK cells in the spleen and tumor tissues of melanoma B16-F10 mice. Mechanistically, our results revealed the interaction of Gal-9 with CD44 as noted by their co-expression/co-localization. Subsequently, this interaction resulted in enhanced expression of Phospho-LCK, ERK, Akt, MAPK, and mTOR in NK cells. Moreover, we found Gal-9(+)NK cells exhibited an activated phenotype as evidenced by increased CD69, CD25, and Sca-1 but reduced KLRG1 expression. Likewise, we found Gal-9 preferentially interacts with CD44(high) in human NK cells. Despite this interaction, we noted a dichotomy in terms of effector functions in NK cells from COVID-19 patients. We observed that the presence of Gal-9 on NK cells resulted in a greater IFN-gamma expression without any changes in cytolytic molecule expression in these patients. These observations suggest differences in Gal-9(+)NK cell effector functions between mice and humans that should be considered in different physiological and pathological conditions. Therefore, our results highlight the important role of Gal-9 via CD44 in NK cell activation, which suggests Gal-9 is a potential new avenue for the development of therapeutic approaches to modulate NK cell effector functions.

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