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Neurons undergo IFNγ-driven persistent epigenetic shifts and synaptopathy in encephalitis

  • Ghazal Shammas
  • , Margot Piccinno
  • , Kristof Egervari
  • , Sylvain Lemeille
  • , Alexandre Mariotte
  • , Federica Maltese
  • , Alessandra Panzeri
  • , Ingrid Wagner
  • , Nicolas Fonta
  • , Tiphaine Furlan
  • , Mario Kreutzfeldt
  • , Ilena Vincenti
  • , Alexander Yermanos
  • , Nicolas Page
  • , Camilla Bellone
  • , Carmen Picon Muñoz
  • , Giovanni Di Liberto
  • , Doron Merkler*
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

In infectious and autoimmune disorders of the central nervous system, neurons can become cognate immunological targets of cytotoxic T cells, leading to persistent functional and synaptic impairments. However, the molecular underpinnings of such irreversible alterations remain unclear. Using a cytotoxic T cell-driven viral encephalitis mouse model, we found synaptic loss and altered neuronal excitability that outlasted the immune response in chronically diseased mice. Employing conditional reporter mice, bulk RNA sequencing (RNA-seq), single-nucleus RNA sequencing (snRNA-seq), chromatin immunoprecipitation followed by sequencing (ChIP-seq), and assay for transposase-accessible chromatin followed by sequencing (ATAC-seq), we mapped the trajectory of transient and sustained epigenetic shifts and transcriptional changes in neurons. Notably, virus-exposed neurons, as cognate targets of cytotoxic T cells, developed interferon-gamma (IFNγ)-mediated persistent chromatin closing, reducing transcription factor accessibility and downstream synaptic gene expression. Analogous synaptic transcriptional signatures were observed in neurons of human encephalitis. Our study identifies a novel IFNγ-driven neuronal epigenetic adaptation program underlying persistent synaptopathy with implications for chronic neuroinflammatory disorders.

Original languageEnglish
Pages (from-to)622-639.e11
JournalNeuron
Volume114
Issue number4
Early online date24 Dec 2025
DOIs
Publication statusPublished - 18 Feb 2026

Keywords

  • chromatin remodeling
  • cytotoxic T cell
  • encephalitis
  • multi-omics
  • neuron
  • non-cytolytic viral clearance
  • synaptic loss
  • transcriptional adaptation

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