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Oxidative stress mediates thalidomide-induced pain by targeting peripheral TRPA1 and central TRPV4
Francesco De Logu1, Gabriela Trevisan2, Ilaria Maddalena Marone1
1Department of Health Sciences, Section of Clinical Pharmacology and Oncology, University of Florence, Viale Pieraccini 6, 50139, Florence, Italy.
Background:
The mechanism underlying the pain symptoms associated with chemotherapeutic-induced peripheral neuropathy (CIPN) is poorly understood. Transient receptor potential ankyrin 1 (TRPA1), TRP vanilloid 4 (TRPV4), TRPV1, and oxidative stress have been implicated in several rodent models of CIPN-evoked allodynia. Thalidomide causes a painful CIPN in patients via an unknown mechanism. Surprisingly, the pathway responsible for such proalgesic response has not yet been investigated in animal models.
Results:
Here, we reveal that a single systemic administration of thalidomide and its derivatives, lenalidomide and pomalidomide, elicits prolonged (~ 35 days) mechanical and cold hypersensitivity in C57BL/6J mouse hind paw. Pharmacological antagonism or genetic deletion studies indicated that both TRPA1 and TRPV4, but not TRPV1, contribute to mechanical allodynia, whereas cold hypersensitivity was entirely due to TRPA1. Thalidomide per se did not stimulate recombinant and constitutive TRPA1 and TRPV4 channels in vitro, which, however, were activated by the oxidative stress byproduct, hydrogen peroxide. Systemic treatment with an antioxidant attenuated mechanical and cold hypersensitivity, and the increase in oxidative stress in hind paw, sciatic nerve, and lumbar spinal cord produced by thalidomide. Notably, central (intrathecal) or peripheral (intraplantar) treatments with channel antagonists or an antioxidant revealed that oxidative stress-dependent activation of peripheral TRPA1 mediates cold allodynia and part of mechanical allodynia. However, oxidative stress-induced activation of central TRPV4 mediated the residual TRPA1-resistant component of mechanical allodynia.
Conclusions:
Targeting of peripheral TRPA1 and central TRPV4 may be required to attenuate pain associated with CIPN elicited by thalidomide and related drugs.
Insights
Thalidomide causes chemotherapy-induced peripheral neuropathy (CIPN) pain through oxidative stress activating TRPA1 and TRPV4 channels. Targeting these channels may alleviate drug-induced pain.
Area of Science:
- Neuroscience
- Pharmacology
- Pain Research
Background:
- Chemotherapy-induced peripheral neuropathy (CIPN) pain mechanisms are poorly understood.
- Oxidative stress and TRP channels (TRPA1, TRPV4, TRPV1) are implicated in rodent CIPN models.
- Thalidomide induces painful CIPN in patients, but its underlying pathway is unknown.
Purpose of the Study:
- Investigate the mechanism of thalidomide-induced peripheral neuropathy pain.
- Identify the specific ion channels and pathways involved in thalidomide-evoked hypersensitivity.
Main Methods:
- Systemic administration of thalidomide and its derivatives (lenalidomide, pomalidomide) in C57BL/6J mice.
- Pharmacological antagonism and genetic deletion of TRPA1, TRPV4, and TRPV1 channels.
- In vitro channel activity assays with hydrogen peroxide.
- Administration of antioxidants and assessment of oxidative stress markers.
Main Results:
- Thalidomide and derivatives induced prolonged mechanical and cold hypersensitivity in mice.
- TRPA1 and TRPV4 channels contributed to mechanical allodynia; TRPA1 mediated cold hypersensitivity.
- Oxidative stress, not direct channel stimulation, activated TRPA1 and TRPV4.
- Antioxidant treatment attenuated hypersensitivity and reduced oxidative stress.
- Peripheral TRPA1 and central TRPV4 mediated distinct components of the pain response.
Conclusions:
- Oxidative stress-dependent activation of peripheral TRPA1 and central TRPV4 underlies thalidomide-induced neuropathic pain.
- Targeting peripheral TRPA1 and central TRPV4 may be crucial for managing CIPN pain from thalidomide-like drugs.
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