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Piperine attenuates cancer-associated pain induced by microglial activation via increasing miR-150-50p
1Department of Oncology, Rudong County Hospital of Traditional Chinese Medicine, Rudong County 226400, Jiangsu, China.
Aim:
Severe painful neuropathy often occurs in cancer patients receiving chemotherapy. Emerging evidence has demonstrated that microglia contribute to the occurrence and development of cancer-associated pain. This study aimed to investigate the mechanisms by which piperine influences cancer-associated pain induced by microglia activation.
Methods:
The tumor cell implantation (TCI) model was adopted as the cancer-associated pain model in mice. Behavioral tests were done to confirm that model mice were sensitive to acute mechanical and thermal pain. Western blot (WB) and immunofluorescence (IF) were conducted to quantify expression level of microglia marker protein Iba1 in mice spinal cord tissues. The expression of miR-150-5p and CXCL12 in the mice spinal cord was evaluated by Quantitative real-time Polymerase Chain Reaction (qRT-PCR) and fluorescence in situ hybridization (FISH). Primary microglia from mice were treated with lipopolysaccharide (LPS) to investigate neuroinflammation.
Results:
The modeled mice showed high susceptibility to acute mechanical hyperalgesia and thermal hyperalgesia. The expression of microglia marker protein Iba1 in the model group was increased in vitro and in vivo. Treatment with piperine effectively relieved the cancer-associated pain in mice. The results of FISH and qRT-PCR showed that piperine significantly increased the expression of miR-150-5p and reduced the expression of CXCL12 in the spinal cord of mice. Furthermore, it inhibited the microglia-induced cancer-associated pain.
Conclusions:
Piperine upregulates miR-150-50p levels, inhibits CXCL12 expression, and reduces microglia levels at the lesion site. Therefore, piperine may be a potential drug candidate for the treatment of cancer-associated pain.
Insights
Piperine alleviates cancer-associated pain by reducing microglia activation. It increases miR-150-50p and decreases CXCL12, offering a potential treatment for chemotherapy-induced neuropathic pain.
Area of Science:
- Neuroscience
- Pharmacology
- Oncology
Background:
- Chemotherapy often causes severe neuropathic pain in cancer patients.
- Microglia play a key role in the development and persistence of cancer-associated pain.
Purpose of the Study:
- To investigate the mechanisms by which piperine affects cancer-associated pain mediated by microglia activation.
- To explore piperine's potential as a therapeutic agent for chemotherapy-induced neuropathic pain.
Main Methods:
- A tumor cell implantation (TCI) mouse model was used to induce cancer-associated pain.
- Behavioral tests assessed mechanical and thermal pain sensitivity.
- Western blot, immunofluorescence, qRT-PCR, and FISH analyzed microglia marker Iba1, miR-150-50p, and CXCL12 expression in spinal cord tissues.
Main Results:
- Piperine treatment significantly reduced mechanical and thermal hyperalgesia in the cancer pain model.
- Piperine increased miR-150-50p expression and decreased CXCL12 expression in the spinal cord.
- Piperine inhibited microglia activation, thereby reducing cancer-associated pain.
Conclusions:
- Piperine upregulates miR-150-50p and downregulates CXCL12, leading to reduced microglia activation at the pain site.
- Piperine demonstrates potential as a therapeutic candidate for managing cancer-associated neuropathic pain.
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