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Lifshitz, L.

Publications and source records attributed to Lifshitz, L..

2 recordsLinked to original sources

Global mRNA and chromatin accessibility profiling elucidate how HIV-1 perturbs ILC and NK cell subsets

The interrelatedness of human blood innate lymphoid cell (ILC) subsets, and how they are perturbed by HIV-1, remains unclear. Transcriptional and chromatin profiling separated blood ILCs into ILC2s, ILCPs, one cluster that included CD56dim and CD56-NK cells, and CD56hiNK cells that have features of both CD56dim/-NK cells and ILCs. In contrast to mice, human NK cells expressed tissue repair protein amphiregulin (AREG), with greater production by CD56hiNK cells than by ILCs. AREG was induced by TCF7/WNT signaling, IL-2, or IL-15, but not by inflammatory cytokines, and was inhibited by TGFB1, a cytokine elevated in people living with HIV-1. NK cell knockout of the TGFB1-stimulated WNT antagonist RUNX3 increased AREG production. In people living with HIV-1, AREG+NK cell percentage correlated with numbers of ILCs and CD4+T cells, and correlated inversely with inflammatory cytokine IL-6. RNA-Seq showed increased antiviral gene expression in all ILC subsets from people who were HIV-1 viremic, and increased expression of anti-inflammatory gene MYDGF in CD56hiNK cells from elite controllers. Functionally-defective CD56-NK cells were increased in people living with HIV-1 in inverse correlation with CD56dimNK cells, ILCs, and CD4+T cells. Experiments with human PBMCs ex vivo and in humanized mice revealed that CD4+T cells and their production of IL-2 prevented CD56dim transition to CD56-NK cells by activating mTOR, and, in people living with HIV-1, plasma IL-2 correlated with CD4+T cell number but not with CD8+T cells. These studies clarify how ILC subsets are interrelated and provide insight into how HIV-1 infection disrupts NK cells, including homeostatic functions of NK cells discovered here. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/440368v3_ufig1.gif" ALT="Figure 1"> View larger version (52K): org.highwire.dtl.DTLVardef@9d6be2org.highwire.dtl.DTLVardef@115f0e8org.highwire.dtl.DTLVardef@17b1a28org.highwire.dtl.DTLVardef@f262e9_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

Multiple human adipocyte subtypes and mechanisms of their development

Human adipose tissue depots perform numerous diverse physiological functions, and are differentially linked to metabolic disease risk, yet only two major human adipocyte subtypes have been described, white and "brown/brite/beige." The diversity and lineages of adipocyte classes have been studied in mice using genetic methods that cannot be applied in humans. Here we circumvent this problem by studying the fate of single mesenchymal progenitor cells obtained from human adipose tissue. We report that a minimum of four human adipocyte subtypes can be distinguished by transcriptomic analysis, specialized for functionally distinct processes such as adipokine secretion and thermogenesis. Evidence for the presence of these adipocytes subtypes in adult humans is evidenced by differential expression of key adipokines leptin and adiponectin in isolated mature adipocytes. The human adipocytes most similar to the mouse "brite/beige" adipocytes are enriched in mechanisms that promote iron accumulation and protect from oxidative stress, and are derived from progenitors that express high levels of cytokines such as IL1B, IL8, IL11 and the IL6 family cytokine LIF, and low levels of the transcriptional repressors ID1 and ID3. Our finding of this adipocyte repertoire and its developmental mechanisms provides a high-resolution framework to analyze human adipose tissue architecture and its role in systemic metabolism and metabolic disease.

physiology↗