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A human iPSC-derived sensory neuron platform for high-throughput discovery of neuroprotectants against chemotherapy-induced peripheral neuropathy

  • Veselina Petrova
  • , Caitlin E. Mills
  • , Clemens Hug
  • , Aysel Cetinkaya-Fisgin
  • , Jennifer Splaine
  • , Sepideh Fouladzadeh
  • , Sara Hakim
  • , Rasheen Powell
  • , Shannon Zhen
  • , Mirra Chung
  • , Gary A. Bradshaw
  • , Tao Deng
  • , Ilyas Singec
  • , Qing Wang
  • , Riki Kawaguchi
  • , Harathi Jonnagaddala
  • , Lee B. Barrett
  • , Jennifer A. Smith
  • , Marian Kalocsay
  • , Benjamin M. Gyori
  • Ahmet Hoke, Peter K. Sorger, Clifford J. Woolf

Research output: Contribution to journalArticlepeer-review

Abstract

Chemotherapy-induced peripheral neuropathy (CIPN) is a major dose-limiting side effect of cancer treatment, yet the lack of predictive human models continues to hinder therapeutic progress. Here, we establish a scalable and reproducible model of paclitaxel-induced axon degeneration and neurotoxicity in human iPSC-derived sensory neurons, suitable for high-throughput identification of neuroprotective compounds. Using this platform, we screen a library of 192 kinase inhibitors and identify 19 hits that commonly inhibit three STE20 kinases—MAP4K4, MINK1, and TNIK. Genetic knockdown studies reveal that multi-kinase inhibition of these kinases is required for neuroprotection against paclitaxel. Consistently, selective pharmacological inhibition of the identified STE20 kinases rescues paclitaxel-induced axon degeneration in iPSC-derived sensory neurons and primary human dorsal root ganglia (DRG) and preserves intraepidermal nerve fiber density in a mouse model of CIPN. Together, these findings establish a translational human sensory neuron platform that enables target validation and drug discovery for CIPN.

Original languageEnglish (US)
Article number102787
JournalCell Reports Medicine
Volume7
Issue number5
DOIs
StatePublished - May 19 2026

Keywords

  • STE20 kinases
  • axon degeneration
  • chemotherapy-induced peripheral neuropathy
  • high-throughput screening
  • iPSC-derived sensory neurons
  • neuroprotective small molecules

ASJC Scopus subject areas

  • General Medicine
  • General Biochemistry, Genetics and Molecular Biology

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