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Metabolic pathways within cTfh subsets and glucose-dependent activation of cTfh17 in SLE and healthy individuals
Vera Kim, Takaya Misao, Hong Tian, Meggan Mackay, Cynthia Aranow, Sun Jung Kim
Vera Kim, Takaya Misao, Hong Tian, Meggan Mackay, Cynthia Aranow, Sun Jung Kim
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Research Article Metabolism

Metabolic pathways within cTfh subsets and glucose-dependent activation of cTfh17 in SLE and healthy individuals

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Abstract

Cellular metabolism plays a key role in T cell biology. Increased glycolysis and mitochondrial respiration have been identified in CD4+ helper T cells from both patients with systemic lupus erythematosus (SLE) and lupus mouse models. Inhibiting this metabolic activity can reduce T cell activation and ameliorate disease symptoms in lupus mice. However, the metabolic differences among circulating follicular helper T (cTfh) cell subsets in patients with SLE versus healthy controls (HCs) have not been thoroughly studied. While the frequencies of cTfh cells and their subsets were similar between patients with SLE and HCs, patients exhibited a higher proportion of activated ICOS+ programmed cell death 1–positive cells, which correlated with disease activity. cTfh17 cells from both patients with SLE and HCs demonstrated heightened glycolytic activity and expression of glycolysis-related genes compared with cTfh1 and cTfh2. Glucose deprivation significantly diminished costimulatory molecule expression and cytokine production, including IL-17A, IL-10, IL-2, and TNF-α. Glycolysis inhibition reduced the B cell activation capacity of cTfh17 cells. This glucose dependence was more pronounced in cTfh17 than cTfh2 from patients with SLE, but it similarly affected both cTfh2 and cTfh17 cells from HCs. These findings highlight distinct metabolic dependencies among cTfh subsets and the critical role of glycolysis in cTfh17-mediated B cell activation in SLE.

Authors

Vera Kim, Takaya Misao, Hong Tian, Meggan Mackay, Cynthia Aranow, Sun Jung Kim

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Figure 7

STF-31 pretreatment reduces cTfh17 cell and B cell activation function.

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STF-31 pretreatment reduces cTfh17 cell and B cell activation function.
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(A) cTfh2 and cTfh17 cells were isolated from patients with SLE and activated with or without activation beads under various inhibitor conditions (VC, DMSO vehicle control; S, STF-31; I, IACS-010759). After 16 hours and 40 hours, cell viability and activation were assessed by flow cytometry. MFI of ICOS was compared in each cTfh subset (bottom left). The frequency of ICOS+PD-1+ cTfh2 and cTfh17 cells was quantified from viable cells and graphed (bottom right) (n = 6). Each dot represents an individual sample, and the bar represents mean ± SD. (B) cTfh2 and cTfh17 cells were isolated from patients with SLE or HCs and pretreated with VC (DMSO) or STF-31 overnight. Cells were washed to remove inhibitor and cocultured with autologous memory B cells and stimulation beads for 2 days. The viability and phenotype of CD19+ B cells were analyzed by flow cytometry. Representative overlay flow images are on the left, and summary graphs with paired comparison between VC and STF-31 are on the bottom 2 rows (top right for SLE and bottom right for HCs) (n = 5). Each dot represents an individual sample. Statistical analysis performed by ordinary 1-way ANOVA with Bonferroni’s posttest correction.

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