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Myeloid cells coordinately induce glioma cell-intrinsic and cell-extrinsic pathways for chemoresistance via GP130 signaling

  • Jiying Cheng
  • , Min Li
  • , Edyta Motta
  • , Deivi Barci
  • , Wangyang Song
  • , Ding Zhou
  • , Gen Li
  • , Sihan Zhu
  • , Anru Yang
  • , Brian D. Vaillant
  • , Axel Imhof
  • , Ignasi Forné
  • , Sabine Spiegl-Kreinecker
  • , Nu Zhang
  • , Hiroshi Katayama
  • , Krishna P.L. Bhat
  • , Charlotte Flüh
  • , Roland E. Kälin
  • , Rainer Glass

Research output: Contribution to journalArticlepeer-review

Abstract

The DNA damage response (DDR) and the blood-tumor barrier (BTB) restrict chemotherapeutic success for primary brain tumors like glioblastomas (GBMs). Coherently, GBMs almost invariably relapse with fatal outcomes. Here, we show that the interaction of GBM and myeloid cells simultaneously induces chemoresistance on the genetic and vascular levels by activating GP130 receptor signaling, which can be addressed therapeutically. We provide data from transcriptomic and immunohistochemical screens with human brain material and pharmacological experiments with a humanized organotypic GBM model, proteomics, transcriptomics, and cell-based assays and report that nanomolar concentrations of the signaling peptide humanin promote temozolomide (TMZ) resistance through DDR activation. GBM mouse models recapitulating intratumoral humanin release show accelerated BTB formation. GP130 blockade attenuates both DDR activity and BTB formation, resulting in improved preclinical chemotherapeutic efficacy. Altogether, we describe an overarching mechanism for TMZ resistance and outline a translatable strategy with predictive markers to improve chemotherapy for GBMs.

Original languageEnglish (US)
Article number101658
JournalCell Reports Medicine
Volume5
Issue number8
DOIs
StatePublished - Aug 20 2024

Keywords

  • blood-tumor barrier
  • chemotherapy
  • DDR
  • DNA damage response
  • glioblastoma
  • GP130
  • humanin
  • IL6ST
  • TAM
  • temozolomide
  • tumor-associated myeloid cells

ASJC Scopus subject areas

  • General Biochemistry, Genetics and Molecular Biology

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