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February 26, 2026Journal of Human Immunity3 citationsOpen Access

Human ISG15 deficiency unveils impaired healing of ulcerations via type I interferon–mediated fibrosis

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CSChristos SazeidesColumbia University Irving Medical CenterLCLorenzo CuolloColumbia University Irving Medical CenterISIkjot SidhuIcahn School of Medicine at Mount Sinai

Key Points

  • The study aims to explore how ISG15 deficiency leads to impaired healing and increased fibrosis through type I interferon pathways.
  • Analyzed patient skin biopsies for molecular characteristics
  • Utilized spatial transcriptomics for detailed tissue analysis
  • Conducted in vitro experiments with ISG15 knockout and wild-type epithelial cells
  • Assessed the effects of TGF-β and type I interferon stimulation on cell behavior
  • Increased apoptosis in epithelial cells due to type I interferon exposure
  • Altered macrophage polarization in ISG15 deficient samples
  • Enhanced epithelial-to-mesenchymal transition observed in ISG15 KO models
  • Impaired mechanical wound healing noted in ISG15 KO fibroblasts compared to wild type

Abstract

ISG15 deficiency is a type I interferonopathy characterized by elevated circulating type I interferon (IFN-I), intracranial calcifications, fibrotic skin lesions, and occasionally inflammatory lung disease. However, the mechanisms driving immune-mediated fibrosis remain poorly understood. In this study, we combined molecular biology approaches with spatial transcriptomics in ex vivo patient samples and in vitro models to characterize a novel loss-of-function ISG15 variant and to elucidate disease-associated molecular pathways. Analysis of patient skin biopsies revealed increased IFN-I–dependent apoptosis, altered macrophage polarization, enhanced epithelial-to-mesenchymal transition (EMT), and myofibroblast activation. In vitro, ISG15 knockout (KO), but not wild-type (WT), epithelial cells were predisposed to EMT following combined TGF-β and IFN-I stimulation. Additionally, ISG15 KO fibroblasts displayed impaired mechanical wound healing and increased IFN-I–induced apoptosis compared with WT cells. Collectively, our findings suggest that chronic IFN-I exposure in ISG15 deficiency disrupts wound repair, skews macrophage activation, and promotes EMT, contributing to fibrosis across multiple organ systems.

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Cite This Study

Sazeides et al. (2026) studied this question.

synapsesocial.com/papers/699fe35995ddcd3a253e72fahttps://doi.org/10.70962/jhi.20250011
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