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Updated: Jan 30, 2026

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Circulating microRNA and automated motion analysis as novel methods of assessing chemotherapy-induced peripheral
Qinghai Peng1, Jordan Mechanic2, Ahmed Shoieb3
1Drug Safety Research & Development, Pfizer Worldwide Research & Development, La Jolla, California, United States of America.
Abstract:
Chemotherapy-induced peripheral neuropathy (CiPN) is a serious adverse effect in the clinic, but nonclinical assessment methods in animal studies are limited to labor intensive behavioral tests or semi-quantitative microscopic evaluation. Hence, microRNA (miRNA) biomarkers and automated in-life behavioral tracking were assessed for their utility as non-invasive methods. To address the lack of diagnostic biomarkers, we explored miR-124, miR-183 and miR-338 in a CiPN model induced by paclitaxel, a well-known neurotoxic agent. In addition, conventional and Vium's innovative Digital Vivarium technology-based in-life behavioral tests and postmortem microscopic examination of the dorsal root ganglion (DRG) and the sciatic nerve were performed. Terminal blood was collected on days 8 or 16, after 20 mg/kg paclitaxel was administered every other day for total of 4 or 7 doses, respectively, for plasma miRNA quantification by RT-qPCR. DRG and sciatic nerve samples were collected from mice sacrificed on day 16 for miRNA quantification. Among the three miRNAs analyzed, only miR-124 was statistically significantly increased (5 fold and 10 fold on day 8 and day 16, respectively). The increase in circulating miR-124 correlated with cold allodynia and axonal degeneration in both DRG and sciatic nerve. Automated home cage motion analysis revealed for the first time that nighttime motion was significantly decreased (P < 0.05) in paclitaxel-dosed animals. Although both increase in circulating miR-124 and decrease in nighttime motion are compelling, our results provide positive evidence warranting further testing using additional peripheral nerve toxicants and diverse experimental CiPN models.
Insights
Chemotherapy-induced peripheral neuropathy (CiPN) can be non-invasively detected using circulating miR-124 levels and automated motion tracking. These novel biomarkers show promise for diagnosing CiPN in preclinical models.
Area of Science:
- Neuroscience
- Biomarkers
- Pharmacology
Background:
- Chemotherapy-induced peripheral neuropathy (CiPN) presents significant clinical challenges.
- Current nonclinical assessment methods for CiPN are limited and labor-intensive.
- There is a need for non-invasive diagnostic biomarkers for CiPN.
Purpose of the Study:
- To evaluate microRNA (miRNA) biomarkers and automated behavioral tracking for non-invasive CiPN assessment.
- To investigate miR-124, miR-183, and miR-338 as potential biomarkers in a paclitaxel-induced CiPN model.
- To correlate biomarker changes with behavioral and pathological outcomes.
Main Methods:
- Paclitaxel was used to induce CiPN in a mouse model.
- Plasma and tissue miRNA levels were quantified using RT-qPCR.
- Automated in-life behavioral tracking (Digital Vivarium) was employed.
- Postmortem microscopic examination of dorsal root ganglion and sciatic nerve was performed.
Main Results:
- Circulating miR-124 levels significantly increased in paclitaxel-treated mice.
- Increased miR-124 correlated with cold allodynia and axonal degeneration.
- Automated home cage analysis revealed a significant decrease in nighttime motion.
Conclusions:
- Circulating miR-124 and decreased nighttime motion are promising non-invasive biomarkers for CiPN.
- These findings support further investigation in diverse CiPN models and toxicants.
- Non-invasive methods could improve preclinical assessment of neurotoxicity.
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