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Updated: Apr 6, 2026

Isolation and Quantification of Axonal mRNAs Using Porous Membrane Inserts and RTddPCR
Published on: February 6, 2026
Paclitaxel inhibits mRNA transport in axons
Ilja Bobylev1, Abhijeet R Joshi1, Mohammed Barham2
1Department of Neurology, University Hospital of Cologne, Germany; Center for Molecular Medicine Cologne (CMMC), University of Cologne, Germany.
Abstract:
Paclitaxel is an integral component of solid tumor treatment. This chemotherapeutic agent provokes an often irreversible peripheral sensory neuropathy with pathological features of distal axonal degeneration. Current pathological concepts assume that polymerization of axonal microtubules and mitochondrial dysfunction contributes to the development of paclitaxel-induced peripheral neuropathy. The relationship, however, between microtubule stabilization, mitotoxicity and axonal degeneration is still not completely understood. To explore the function of axonal mitochondria we treated transgenic mice that harbor cyan fluorescent protein (CFP)-labeled neuronal mitochondria with repeated doses of paclitaxel and assessed neuropathic changes by nerve conduction and histological studies. In addition, mitochondrial content and morphology was determined by ex vivo imaging of axons containing CFP-labeled mitochondria. Using quantitative RT-PCR and fluorescence-labeled mRNA we determined axonal mRNA transport of nuclear encoded mitochondrial proteins. Prolonged treatment with high doses of paclitaxel-induced a predominant sensory neuropathy in mice. Although mitochondrial velocity in axons per se was not altered, we observed significant changes in mitochondrial morphology, suggesting that paclitaxel treatment impairs the dynamics of axonal mitochondria. These changes were caused by decreased levels of nuclear encoded mRNA, including the mitochondrial fusion/fission machinery. Moreover, impaired axonal mRNA transport in vitro resulted in mitochondrial dysfunction and subsequent axonal degeneration. Taken together, our experiments provide evidence that disrupted axonal transport of nuclear derived mRNA plays a crucial role in the pathogenesis of paclitaxel-induced sensory neuropathy.
Insights
Paclitaxel treatment causes sensory neuropathy by disrupting axonal transport of mitochondrial protein mRNA. This leads to mitochondrial dysfunction and axonal degeneration, crucial in paclitaxel-induced peripheral neuropathy.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Paclitaxel is a key chemotherapy for solid tumors.
- It causes irreversible peripheral sensory neuropathy, characterized by axonal degeneration.
- Microtubule stabilization and mitochondrial dysfunction are implicated, but the exact relationship is unclear.
Purpose of the Study:
- To investigate the role of axonal mitochondria in paclitaxel-induced neuropathy.
- To explore the impact of paclitaxel on mitochondrial dynamics and axonal mRNA transport.
Main Methods:
- Transgenic mice with CFP-labeled neuronal mitochondria were treated with paclitaxel.
- Neuropathic changes were assessed via nerve conduction and histology.
- Mitochondrial morphology and axonal mRNA transport were quantified.
Main Results:
- Paclitaxel induced a sensory neuropathy in mice.
- Mitochondrial morphology changed significantly, indicating impaired dynamics.
- Decreased nuclear-encoded mRNA levels, including for mitochondrial fusion/fission proteins, were observed.
- Impaired axonal mRNA transport led to mitochondrial dysfunction and degeneration.
Conclusions:
- Disrupted axonal transport of nuclear-derived mRNA is a key factor in paclitaxel-induced sensory neuropathy.
- This disruption impairs mitochondrial dynamics, leading to dysfunction and degeneration.
- Understanding this mechanism may inform strategies to mitigate chemotherapy-induced nerve damage.
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