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Updated: Mar 16, 2026

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Structural Basis for Induction of Peripheral Neuropathy by Microtubule-Targeting Cancer Drugs
Jennifer A Smith1, Barbara S Slusher2, Krystyna M Wozniak3
1Neuroscience Research Institute, University of California, Santa Barbara, Santa Barbara, California. Molecular, Cellular, and Developmental Biology, University of California, Santa Barbara, Santa Barbara, California.
Abstract:
Peripheral neuropathy is a serious, dose-limiting side effect of cancer treatment with microtubule-targeting drugs. Symptoms present in a "stocking-glove" distribution, with longest nerves affected most acutely, suggesting a length-dependent component to the toxicity. Axonal transport of ATP-producing mitochondria along neuronal microtubules from cell body to synapse is crucial to neuronal function. We compared the effects of the drugs paclitaxel and ixabepilone that bind along the lengths of microtubules and the drugs eribulin and vincristine that bind at microtubule ends, on mitochondrial trafficking in cultured human neuronal SK-N-SH cells and on axonal transport in mouse sciatic nerves. Antiproliferative concentrations of paclitaxel and ixabepilone significantly inhibited the anterograde transport velocity of mitochondria in neuronal cells, whereas eribulin and vincristine inhibited transport only at significantly higher concentrations. Confirming these observations, anterogradely transported amyloid precursor protein accumulated in ligated sciatic nerves of control and eribulin-treated mice, but not in paclitaxel-treated mice, indicating that paclitaxel inhibited anterograde axonal transport, whereas eribulin did not. Electron microscopy of sciatic nerves of paclitaxel-treated mice showed reduced organelle accumulation proximal to the ligation consistent with inhibition of anterograde (kinesin based) transport by paclitaxel. In contrast, none of the drugs significantly affected retrograde (dynein based) transport in neuronal cells or mouse nerves. Collectively, these results suggest that paclitaxel and ixabepilone, which bind along the lengths and stabilize microtubules, inhibit kinesin-based axonal transport, but not dynein-based transport, whereas the microtubule-destabilizing drugs, eribulin and vincristine, which bind preferentially to microtubule ends, have significantly less effect on all microtubule-based axonal transport. Cancer Res; 76(17); 5115-23. ©2016 AACR.
Insights
Cancer drugs paclitaxel and ixabepilone disrupt mitochondrial transport in neurons, causing peripheral neuropathy. Eribulin and vincristine have minimal effects on this transport mechanism.
Area of Science:
- Neuroscience
- Oncology
- Pharmacology
Background:
- Peripheral neuropathy is a common, dose-limiting side effect of microtubule-targeting cancer drugs.
- The "stocking-glove" distribution of symptoms suggests a length-dependent toxicity.
- Axonal transport of mitochondria is vital for neuronal function.
Purpose of the Study:
- To investigate the differential effects of microtubule-targeting drugs on axonal transport.
- To compare drugs that bind along microtubule lengths versus those that bind at microtubule ends.
Main Methods:
- Cultured human neuronal SK-N-SH cells and mouse sciatic nerves were used.
- Mitochondrial trafficking and axonal transport of proteins were analyzed.
- Drugs tested included paclitaxel, ixabepilone, eribulin, and vincristine.
Main Results:
- Paclitaxel and ixabepilone significantly inhibited anterograde mitochondrial transport.
- Eribulin and vincristine showed inhibition only at higher concentrations.
- Paclitaxel inhibited anterograde axonal transport, while eribulin did not; retrograde transport was unaffected.
Conclusions:
- Paclitaxel and ixabepilone, which stabilize microtubules, inhibit kinesin-based axonal transport.
- Eribulin and vincristine, which destabilize microtubules, have minimal impact on axonal transport.
- Drug binding site on microtubules influences the severity of axonal transport inhibition and potential neuropathy.
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