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NK cells in childhood obesity are activated, metabolically stressed, and functionally deficient
Laura M. Tobin, Meenal Mavinkurve, Eirin Carolan, David Kinlen, Eoin C. O’Brien, Mark A. Little, David K. Finlay, Declan Cody, Andrew E. Hogan, Donal O’Shea
Laura M. Tobin, Meenal Mavinkurve, Eirin Carolan, David Kinlen, Eoin C. O’Brien, Mark A. Little, David K. Finlay, Declan Cody, Andrew E. Hogan, Donal O’Shea
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Research Article Immunology Metabolism

NK cells in childhood obesity are activated, metabolically stressed, and functionally deficient

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Abstract

Childhood obesity is a major global concern, with over 50 million children now classified as obese. Obesity has been linked to the development of numerous chronic inflammatory diseases, including type 2 diabetes and multiple cancers. NK cells are a subset of innate effector cells, which play an important role in the regulation of adipose tissue and antitumor immunity. NK cells can spontaneously kill transformed cells and coordinate subsequent immune responses through their production of cytokines. We investigated the effect of obesity on NK cells in a cohort of obese children, compared to children with a healthy weight. We demonstrated a reduction in peripheral NK cell frequencies in childhood obesity and inverse correlations with body mass index and insulin resistance. Compared with NK cells from children with normal weight, we show increased NK cell activation and metabolism in obese children (PD-1, mTOR activation, ECAR, and mitochondrial ROS), along with a reduced capacity to respond to stimulus, ultimately leading to loss of function (proliferation and tumor lysis). Collectively we show that NK cells from obese children are activated, metabolically stressed, and losing the ability to perform their basic duties. Paired with the reduction in NK cell frequencies in childhood obesity, this suggests that the negative effect on antitumor immunity is present early in the life course of obesity and certainly many years before the development of overt malignancies.

Authors

Laura M. Tobin, Meenal Mavinkurve, Eirin Carolan, David Kinlen, Eoin C. O’Brien, Mark A. Little, David K. Finlay, Declan Cody, Andrew E. Hogan, Donal O’Shea

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Figure 2

NK cells from obese children display increased activation and diminished effector responses.

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NK cells from obese children display increased activation and diminished...
(A) Bar graph and representative dot detailing the percentage of NK cells expressing CD69 in lean and obese childhood cohorts (n = 5). Bar graphs showing (B) basal or (C) IL-2/IL-12–stimulated PD-1 expression (MFI) on NK cells from lean and obese children. (D) Representative dot plot showing PD-1 expression on stimulated NK cells from a lean and an obese donor. The numbers represent the MFI for the histograms on which they are displayed, the black corresponds to leans as per the histogram and grey represents obese MFI (D, J, and L). Plots showing the expansion of NK cells from (E) lean and (F) obese children following 7 days of IL-2/IL-15 stimulation. (G) Scatter plot showing the fold expansion (over baseline numbers) of NK cells from lean and obese children stimulated with IL-2/IL-15 for 7 days. (H) Bar graph showing the number of K562 tumor cells lysed (10:1 effector/target ratio) in 4 hours by NK cells isolated from either lean or obese children. (I and J) Bar graph and representative histogram showing granzyme B levels on K562 cells cocultured with NK cells from lean or obese children. (K and L) Bar graph and representative histogram showing perforin levels on K562 stimulated NK cells from lean or obese children. (M) Bar graph showing IL-2/IL-12–stimulated NK cell production of IFN-γ in a cohort of lean and obese children. (N) Representative dot plot showing IFN-γ production by NK cells basally or stimulated with IL-2/IL-12 for 18 hours. Data are representative of a minimum of 10 independent experiments. Statistical comparisons using Student’s t test. *P < 0.05, **P ≤ 0.01.

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