Shared and specific molecular mechanisms of proteasome inhibitors in chemotherapy-induced peripheral neurotoxicity
- Br J Pharmacol. 2026 May 28. doi: 10.1111/bph.70501.
- 1. Experimental Neurology Unit, School of Medicine and Surgery, University of Milano-Bicocca, Monza, Italy.
- 2. Fondazione IRCCS San Gerardo dei Tintori, Monza, Italy.
- 3. Proteomics and Metabolomics Unit, School of Medicine and Surgery, University of Milano-Bicocca, Vedano al Lambro, Italy.
- 4. Department of Pharmaceutical Sciences, Università del Piemonte Orientale, Novara, Italy.
- 5. Department of Pharmaceutical and Pharmacological Sciences, University of Padua, Padua, Italy.
- 6. Department of Biosciences, Università degli Studi di Milano, Milan, Italy.
- 7. Neuroalgology Unit, Fondazione IRCCS Istituto Neurologico Carlo Besta, Milan, Italy.
- 8. School of Medicine and Surgery, University of Milano-Bicocca, Monza, Italy.
- 9. Neuroscience Institute Cavalieri Ottolenghi, Department of Neuroscience Rita Levi Montalcini, University of Turin, Turin, Italy.
- 10. Department of Pathology and Cell Biology, Columbia University, New York, New York, USA.
- 11. Department of Veterinary Medicine and Animal Production, University of Naples Federico II, Naples, Italy.
Background and purpose: Proteasome inhibitors have been approved for treatment of multiple myeloma but induce significant chemotherapy-related peripheral neurotoxicity in up to one third of patients. Crucial information about the several neurotoxicity mechanisms suggested in the literature and effective triggering events is either missing or controversial, due to heterogeneity of experimental models used to investigate such processes. To fill this knowledge gap, we compared the neurotoxicity of bortezomib (BTZ) and carfilzomib (CFZ), a less neurotoxic drug, by investigating preclinical models and dissecting the underlying molecular mechanisms using a multidimensional approach.
Experimental approach: We developed a new mouse model of CFZ-induced neuropathy and compared it with an established BTZ model using behavioural, morphological/morphometric and proteomic analyses of dorsal root ganglia (DRG) tissues. Mitotoxicity and Cytoskeleton alterations were compared in terms of onset of altered mitochondrial morphology, functionality and trafficking, alongside cytoskeletal protein expression and axonal degeneration in cultured mouse DRG neurons.
Key results: BTZ's severe neurotoxicity in vivo correlated with severe loss of nerve fibres and extensive protein expression changes. In vitro, both compounds significantly altered mitochondrial network organization and energy production after 24 h of treatment. However, only BTZ induced accumulation of tubulin post-translational modifications and early axonal degeneration within the first 10 h, severely impacting mitochondrial trafficking after 24 h.
Conclusions and implications: These results point to mitochondrial toxicity as a common downstream effect of both treatments, whereas BTZ-specific off-target activity on tubulin hyper-stability may initiate early mitochondrial trafficking alterations. This knowledge may inform future mitigation approaches.
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Cat. No.Product NameDescriptionTargetResearch Area
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Research Areas: Cancer