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Updated: Jul 25, 2025

The Sciatic Nerve Cuffing Model of Neuropathic Pain in Mice
Published on: July 16, 2014
Chemotherapy for pain: reversing inflammatory and neuropathic pain with the anticancer agent mithramycin A
Zheyun Xu1, Man-Cheung Lee1, Kayla Sheehan1
1Department of Anesthesia and Perioperative Care and the UCSF Pain and Addiction Research Center, University of California, San Francisco, San Francisco, CA, United States.
Abstract:
The persistence of inflammatory and neuropathic pain is poorly understood. We investigated a novel therapeutic paradigm by targeting gene networks that sustain or reverse persistent pain states. Our prior observations found that Sp1-like transcription factors drive the expression of TRPV1, a pain receptor, that is blocked in vitro by mithramycin A (MTM), an inhibitor of Sp1-like factors. Here, we investigate the ability of MTM to reverse in vivo models of inflammatory and chemotherapy-induced peripheral neuropathy (CIPN) pain and explore MTM's underlying mechanisms. Mithramycin reversed inflammatory heat hyperalgesia induced by complete Freund adjuvant and cisplatin-induced heat and mechanical hypersensitivity. In addition, MTM reversed both short-term and long-term (1 month) oxaliplatin-induced mechanical and cold hypersensitivity, without the rescue of intraepidermal nerve fiber loss. Mithramycin reversed oxaliplatin-induced cold hypersensitivity and oxaliplatin-induced TRPM8 overexpression in dorsal root ganglion (DRG). Evidence across multiple transcriptomic profiling approaches suggest that MTM reverses inflammatory and neuropathic pain through broad transcriptional and alternative splicing regulatory actions. Mithramycin-dependent changes in gene expression following oxaliplatin treatment were largely opposite to and rarely overlapped with changes in gene expression induced by oxaliplatin alone. Notably, RNAseq analysis revealed MTM rescue of oxaliplatin-induced dysregulation of mitochondrial electron transport chain genes that correlated with in vivo reversal of excess reactive oxygen species in DRG neurons. This finding suggests that the mechanism(s) driving persistent pain states such as CIPN are not fixed but are sustained by ongoing modifiable transcription-dependent processes.
Insights
Mithramycin A (MTM) reversed inflammatory and chemotherapy-induced peripheral neuropathy (CIPN) pain by targeting gene networks. This suggests persistent pain is sustained by modifiable, transcription-dependent processes, offering a novel therapeutic approach.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Persistent inflammatory and neuropathic pain mechanisms remain unclear.
- Sp1-like transcription factors regulate TRPV1, a pain receptor, and are inhibited by mithramycin A (MTM).
Purpose of the Study:
- To investigate MTM's efficacy in reversing in vivo models of inflammatory and chemotherapy-induced peripheral neuropathy (CIPN) pain.
- To explore the molecular mechanisms underlying MTM's pain-reversing effects.
Main Methods:
- In vivo assessment of MTM in complete Freund adjuvant-induced inflammatory pain and oxaliplatin-induced CIPN models.
- Transcriptomic profiling (RNAseq) and analysis of gene expression, alternative splicing, and mitochondrial function in dorsal root ganglion (DRG) neurons.
Main Results:
- MTM reversed heat hyperalgesia in inflammatory pain and heat, mechanical, and cold hypersensitivity in CIPN models.
- MTM reversed oxaliplatin-induced TRPM8 overexpression and cold hypersensitivity without restoring nerve fibers.
- MTM reversed oxaliplatin-induced dysregulation of mitochondrial electron transport chain genes and reduced reactive oxygen species in DRG neurons.
Conclusions:
- MTM reverses inflammatory and neuropathic pain via broad transcriptional and alternative splicing regulation.
- Persistent pain states like CIPN are sustained by ongoing, modifiable transcription-dependent processes.
- MTM demonstrates potential as a therapeutic agent for persistent pain by targeting these underlying transcriptional mechanisms.
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