Mutual Amplification of GLI2/Hedgehog and Transcription Factor JUN/AP-1 Signaling in Fibroblasts in Systemic

Christina Bergmann1, Sara Chenguiti Fakhouri1, Thuong Trinh-Minh2

  • 1Deutsches Zentrum für Immuntherapie, Friedrich-Alexander-Universität Erlangen-Nürnberg and Uniklinikum Erlangen, Erlangen, Germany.

Abstract

Insights

The transcription factors cJUN and GLI2 mutually amplify each other, driving fibroblast activation in systemic sclerosis (SSc). Combined inhibition of these pathways shows additive antifibrotic effects in SSc models.

Area of Science:

  • Molecular biology
  • Cell signaling
  • Dermatology

Background:

  • Fibroblast activation is central to systemic sclerosis (SSc) pathogenesis.
  • Deregulation of cJUN/AP-1 and hedgehog/GLI2 pathways is implicated in SSc.
  • The consequences of simultaneous cJUN/AP-1 and hedgehog/GLI2 pathway activation are unknown.

Purpose of the Study:

  • To investigate the hypothesis that mutual amplification of cJUN/AP-1 and hedgehog/GLI2 signaling drives persistent fibroblast activation in SSc.
  • To explore the therapeutic potential of inhibiting these interacting pathways.

Main Methods:

  • Analysis of cultured fibroblasts and skin sections from SSc patients and healthy controls.
  • Inhibition of cJUN/AP-1 and hedgehog/GLI2 signaling using knockdown and pharmacologic agents.
  • In vivo studies involving fibroblast-specific overexpression of Smoothened (SmoACT) and TGFβ-driven fibrosis (TBRACT) mouse models.

Main Results:

  • cJUN and GLI2 are concurrently upregulated and colocalize in SSc fibroblasts.
  • Hedgehog/GLI2 activation induces cJUN expression, and cJUN inactivation impairs GLI2 expression, indicating transcriptional cross-regulation.
  • Combined inhibition of cJUN/AP-1 and hedgehog/GLI2 signaling reduced fibroblast activation, collagen release, and skin fibrosis in mouse models, demonstrating additive antifibrotic effects.

Conclusions:

  • The transcription factors cJUN and GLI2 engage in a positive feedback loop that promotes fibroblast activation in SSc.
  • Interrupting this crosstalk through combined inhibition of both pathways offers a promising therapeutic strategy with additive antifibrotic effects.
  • Combined inhibition of cJUN/AP-1 and hedgehog/GLI2 pathways demonstrates potential for treating SSc with well-tolerated doses.

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