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Metabolic modeling of single Th17 cells reveals regulators of autoimmunity.

  • A Wagner
  • , C Wang
  • , Johannes Fessler
  • , D DeTomaso
  • , J Avila-Pacheco
  • , J Kaminski
  • , S Zaghouani
  • , E Christian
  • , P Thakore
  • , B Schellhaass
  • , E Akama-Garren
  • , K Pierce
  • , V Singh
  • , N Ron-Harel
  • , VP Douglas
  • , L Bod
  • , A Schnell
  • , D Puleston
  • , RA Sobel
  • , M Haigis
  • EL Pearce, M Soleimani, C Clish, A Regev, VK Kuchroo, N Yosef

    Publikation: Beitrag in FachzeitschriftOriginalarbeit

    380 Quellenangaben (Web of Science)

    Abstract

    Metabolism is a major regulator of immune cell function, but it remains difficult to study the metabolic status of individual cells. Here, we present Compass, an algorithm to characterize cellular metabolic states based on single-cell RNA sequencing and flux balance analysis. We applied Compass to associate metabolic states with T helper 17 (Th17) functional variability (pathogenic potential) and recovered a metabolic switch between glycolysis and fatty acid oxidation, akin to known Th17/regulatory T cell (Treg) differences, which we validated by metabolic assays. Compass also predicted that Th17 pathogenicity was associated with arginine and downstream polyamine metabolism. Indeed, polyamine-related enzyme expression was enhanced in pathogenic Th17 and suppressed in Treg cells. Chemical and genetic perturbation of polyamine metabolism inhibited Th17 cytokines, promoted Foxp3 expression, and remodeled the transcriptome and epigenome of Th17 cells toward a Treg-like state. In vivo perturbations of the polyamine pathway altered the phenotype of encephalitogenic T cells and attenuated tissue inflammation in CNS autoimmunity.

    OriginalspracheEnglisch
    Seiten (von - bis)4168-4185.e21
    Seitenumfang39
    FachzeitschriftCell
    Jahrgang184
    Ausgabenummer16
    Frühes Online-DatumAug. 2021
    DOIs
    PublikationsstatusVeröffentlicht - 5 Aug. 2021

    Wissenschaftszweige

    • 305 Andere Humanmedizin, Gesundheitswissenschaften
    • 302 Klinische Medizin
    • 106 Biologie

    Forschungsfelder

    • Neurowissenschaften

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