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DNA repair drives cisplatin-induced neuronal death

  • William J. Nathan
  • , Chuanyuan Chen
  • , Rosy Sakr
  • , Bruno Siqueira Mietto
  • , Vincent van Batenburg
  • , Jeroen van den Berg
  • , Josette J. Wlaschin
  • , Ferenc Livak
  • , Elsa Callen
  • , Nancy Wong
  • , Eliza Y.H. Lloyd
  • , Hanna Silberberg
  • , Sushma Sharma
  • , Raj Chari
  • , Tzipporah Freeman
  • , Baek Kim
  • , Alexander van Oudenaarden
  • , Alexander T. Chesler
  • , Michael E. Ward
  • , Lisa D. Boxer
  • Peter J. McHugh, Andrei Chabes, Claire E. Le Pichon, André Nussenzweig*
*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Platinum agents are cornerstone therapies for many cancers but often cause neurotoxicity in post-mitotic tissues, for which effective interventions are lacking. This limitation reflects an incomplete understanding of neuronal responses to DNA damage. We show that nucleotide excision repair (NER) mediates cisplatin lesion removal in neurons; however, unlike its protective role in dividing cells, NER promotes neuronal death in response to cisplatin. This vulnerability arises because neurons possess low deoxynucleoside triphosphate (dNTP) pools. dNTPs are initially consumed during transcription-coupled NER to resolve transcription-blocking lesions. As dNTP levels become depleted, repair fails to complete, leading to accumulation of double-strand breaks, particularly during global-genome NER. Supplementation with deoxynucleosides or genetic upregulation of dNTP synthesis restores nucleotide pools, protects neurons from cell death, and reduces cisplatin-induced neuropathic pain. These findings identify limited dNTP availability as a key vulnerability in post-mitotic cells and suggest nucleoside supplementation as a potential strategy to mitigate chemotherapy-induced neurotoxicity.

Original languageEnglish
Pages (from-to)p4005-4021.e11
JournalCell
Volume189
Issue number13
Early online date10 Jun 2026
DOIs
Publication statusPublished - 25 Jun 2026

Keywords

  • chemotherapy
  • cisplatin
  • deoxynucleotides
  • DNA repair
  • neuron
  • neuropathy
  • neurotoxicity
  • nucleotide excision repair

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