Related Experiment Video
Updated: Sep 4, 2025

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Quantitative proteomic analysis of oxaliplatin induced peripheral neurotoxicity
Linlin Yang1, Hua Wang1, Wanting Lu2
1School of Pharmaceutical Science and Technology, Tianjin University, Tianjin 300072, China.
Abstract:
Oxaliplatin (OXA)-induced peripheral neurotoxicity (OIPN) is a high-incidence and dose-dependent adverse reaction during OXA treatment. Its underlying mechanisms remain unclear, and no effective treatment or prevention therapies are currently available. Here, we employed a data independent acquisition (DIA)-based quantitative proteomic strategy to investigate the global proteome alterations in the dorsal root ganglion (DRG) tissues from mice injected with OXA for different periods. We identified 1128 differentially regulated proteins that were divided into six subclusters according to their alteration trends. Interestingly, these proteins were involved in cellular processes such as cell cycle, ribosomal stress, metabolism, and ion transport. In addition, OXA administration induced abundance changes of ion channels and proteins associated with mitochondrial function and reactive oxygen species production. Furthermore, we investigated the effects of diroximel fumarate (DRF), an FDA-approved oral fumarate drug for the treatment of relapsing forms of multiple sclerosis. Our findings showed that DRF could effectively ameliorate symptoms of OIPN and reduce the level of oxidative stress in mice. Taken together, our study systematically mapped the proteome alteration associated with the neural toxicity of OXA, and the findings could be leveraged to better understand the mechanisms of OIPN and to develop more effect treatment therapies. SIGNIFICANCE: Oxaliplatin (OXA)-induced peripheral neurotoxicity (OIPN) is a high-incidence and dose-dependent adverse reaction with unclear mechanism. Here we employed a data independent acquisition (DIA)-based quantitative proteomic strategy to explore the proteome changes in dorsal root ganglion (DRG) tissues from mice treated by OXA. The findings provided novel insights regarding the mechanisms of OIPN. For example, our data showed that OXA induced a broad disturbance in metabolism, particularly in glycolysis and amino acid metabolism. Additionally, we observed abundance changes of many ion channels and proteins associated with mitochondrial function and reactive oxygen species production. Furthermore, this study provided the first evidence for the possibility of repositioning diroximel fumarate (DRF) for treating OIPN.
Insights
Oxaliplatin (OXA) causes peripheral neurotoxicity (OIPN) through unclear mechanisms. This study used proteomics to map proteome changes in dorsal root ganglia, revealing metabolic disturbances and identifying diroximel fumarate (DRF) as a potential treatment.
Area of Science:
- Neuroscience
- Proteomics
- Pharmacology
Background:
- Oxaliplatin (OXA)-induced peripheral neurotoxicity (OIPN) is a common, dose-dependent side effect of OXA chemotherapy.
- The underlying mechanisms of OIPN are not fully understood, and effective treatments are lacking.
- Dorsal root ganglion (DRG) tissues are critical in mediating peripheral neurotoxicity.
Purpose of the Study:
- To investigate global proteome alterations in DRG tissues following OXA administration using a data-independent acquisition (DIA) quantitative proteomic strategy.
- To identify key proteins and pathways involved in the mechanisms of OIPN.
- To evaluate the therapeutic potential of diroximel fumarate (DRF) in ameliorating OIPN.
Main Methods:
- Employed a data-independent acquisition (DIA)-based quantitative proteomic strategy.
- Analyzed proteome alterations in dorsal root ganglion (DRG) tissues from mice treated with OXA.
- Investigated the effects of diroximel fumarate (DRF) on OIPN symptoms and oxidative stress markers.
Main Results:
- Identified 1128 differentially regulated proteins in DRG tissues, clustered by alteration trends.
- Observed significant involvement of proteins in cell cycle, ribosomal stress, metabolism (including glycolysis and amino acid metabolism), and ion transport.
- Found OXA induced changes in ion channels, mitochondrial proteins, and reactive oxygen species production; DRF treatment ameliorated OIPN symptoms and reduced oxidative stress.
Conclusions:
- The study systematically mapped proteome alterations associated with OXA-induced neural toxicity.
- Findings provide novel insights into OIPN mechanisms, highlighting metabolic disturbances and oxidative stress.
- Diroximel fumarate (DRF) shows promise as a potential therapeutic agent for treating OIPN.
More Related Videos
15:05Functional Evaluation of Biological Neurotoxins in Networked Cultures of Stem Cell-derived Central Nervous System Neurons
Published on: February 5, 2015
10:31Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025