TY - JOUR
T1 - DNA repair drives cisplatin-induced neuronal death
AU - Nathan, William J.
AU - Chen, Chuanyuan
AU - Sakr, Rosy
AU - Siqueira Mietto, Bruno
AU - van Batenburg, Vincent
AU - van den Berg, Jeroen
AU - Wlaschin, Josette J.
AU - Livak, Ferenc
AU - Callen, Elsa
AU - Wong, Nancy
AU - Lloyd, Eliza Y.H.
AU - Silberberg, Hanna
AU - Sharma, Sushma
AU - Chari, Raj
AU - Freeman, Tzipporah
AU - Kim, Baek
AU - van Oudenaarden, Alexander
AU - Chesler, Alexander T.
AU - Ward, Michael E.
AU - Boxer, Lisa D.
AU - McHugh, Peter J.
AU - Chabes, Andrei
AU - Le Pichon, Claire E.
AU - Nussenzweig, André
N1 - Publisher Copyright:
© 2026 .
PY - 2026/6/25
Y1 - 2026/6/25
N2 - 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.
AB - 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.
KW - chemotherapy
KW - cisplatin
KW - deoxynucleotides
KW - DNA repair
KW - neuron
KW - neuropathy
KW - neurotoxicity
KW - nucleotide excision repair
UR - https://www.scopus.com/pages/publications/105041310901
U2 - 10.1016/j.cell.2026.05.025
DO - 10.1016/j.cell.2026.05.025
M3 - Article
AN - SCOPUS:105041310901
SN - 0092-8674
VL - 189
SP - p4005-4021.e11
JO - Cell
JF - Cell
IS - 13
ER -