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.
Abstract:
Chemotherapy-induced peripheral neuropathy (CIPN) is a common and debilitating adverse event that can alter patient treatment options and halt candidate drug development. A case study is presented here describing the preclinical and clinical development of CC-90003, a small molecule extracellular signal-regulated kinase (ERK)1/2 inhibitor investigated as an oncology therapy. In a Phase Ia clinical trial, CC-90003 elicited adverse drug-related neuropathy and neurotoxicity that contributed to discontinued development of CC-90003 for oncology therapy. Preclinical evaluation of CC-90003 in dogs revealed clinical signs and electrophysiological changes consistent with peripheral neuropathy that was reversible. Mice did not exhibit signs of neuropathy upon daily dosing with CC-90003, supporting that rodents generally poorly predict CIPN. We sought to investigate the mechanism of CC-90003-induced peripheral neuropathy using a phenotypic in vitro assay. Translating preclinical neuropathy findings to humans proves challenging as no robust in vitro models of CIPN exist. An approach was taken to examine the influence of CIPN-associated drugs on human-induced pluripotent stem cell-derived peripheral neuron (hiPSC-PN) electrophysiology on multielectrode arrays (MEAs). The MEA assay with hiPSC-PNs was sensitive to CIPN-associated drugs cisplatin, sunitinib, colchicine, and importantly, to CC-90003 in concordance with clinical neuropathy incidence. Biochemical data together with in vitro MEA data for CC-90003 and 12 of its structural analogs, all having similar ERK inhibitory activity, revealed that CC-90003 disrupted in vitro neuronal electrophysiology likely via on-target ERK inhibition combined with off-target kinase inhibition and translocator protein inhibition. This approach could prove useful for assessing CIPN risk and interrogating mechanisms of drug-induced neuropathy.
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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