Investigation Into the Role of ERK in Tyrosine Kinase Inhibitor-Induced Neuropathy

David G Belair1, Katelyn Sudak1, Kimberly Connelly1

  • 1Nonclinical Safety, Bristol Myers Squibb (formerly Celgene), Summit, New Jersey 07901, USA.

Insights

Chemotherapy-induced peripheral neuropathy (CIPN) is a challenge in drug development. A new in vitro model using human stem cell-derived neurons accurately predicts CIPN risk for novel oncology drugs.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Drug Development

Background:

  • Chemotherapy-induced peripheral neuropathy (CIPN) is a significant adverse event impacting cancer patient treatment and drug development.
  • Developing predictive models for CIPN is crucial due to challenges in translating preclinical findings to human outcomes.

Purpose of the Study:

  • To investigate the mechanism of CC-90003-induced peripheral neuropathy.
  • To establish a robust in vitro model for assessing CIPN risk of novel drug candidates.

Main Methods:

  • Utilized human-induced pluripotent stem cell-derived peripheral neurons (hiPSC-PNs) on multielectrode arrays (MEAs) to assess drug-induced electrophysiological changes.
  • Evaluated CC-90003 and its analogs for their impact on neuronal electrophysiology and correlated findings with clinical neuropathy incidence.
  • Investigated the biochemical mechanisms underlying CC-90003 neurotoxicity.

Main Results:

  • The hiPSC-PN MEA assay demonstrated sensitivity to known CIPN-associated drugs, including CC-90003, mirroring clinical observations.
  • Rodent models poorly predicted CC-90003-induced neuropathy, highlighting limitations of traditional preclinical testing.
  • CC-90003 disrupted neuronal electrophysiology via combined on-target (ERK inhibition) and off-target (kinase and translocator protein inhibition) mechanisms.

Conclusions:

  • A novel in vitro MEA assay with hiPSC-PNs shows promise for predicting CIPN risk.
  • This model can aid in interrogating mechanisms of drug-induced neuropathy and inform future drug development.
  • Understanding CC-90003's neurotoxic mechanisms provides insights into potential therapeutic strategies and safety assessments.

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