ArticleNutrients2023
Turmeric Bioactive Compounds Alleviate Spinal Nerve Ligation-Induced Neuropathic Pain by Suppressing Glial Activation and Improving Mitochondrial Function in Spinal Cord and Amygdala.
Article in Nutrients, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 11 citations in OpenAlex.
- Bioactive compounds for neuroinflammation and neuropathic pain management: molecular and cellular mechanisms.Inflammopharmacology · 2026Review
- Differential Effects of Turmeric Bioactive Compounds on Neuroinflammation and Mitochondrial Homeostasis in Brain Regions in a Rodent Model of Neuropathic Pain.Metabolites · 2026Article
- Lidocaine alleviates diabetic neuropathic pain by inhibiting spinal astrocyte activation through modulation of the CXCL13/CXCR5 axis.Journal of molecular histology · 2026Article
- Sex-specific lateralization of the effects of exogenously-induced neuroimmune activation in the amygdala on pain-like behaviors.Frontiers in pharmacology · 2026Article
- A Review on Current Aspects of Curcumin-Based Effects in Relation to Neurodegenerative, Neuroinflammatory and Cerebrovascular Diseases.Molecules (Basel, Switzerland) · 2024Review
- Curcumin Mitigates Muscle Atrophy Potentially by Attenuating Calcium Signaling and Inflammation in a Spinal Nerve Ligation Model.Current issues in molecular biology · 2024Article
- Cells and circuits for amygdala neuroplasticity in the transition to chronic pain.Cell reports · 2024Article
- Prevalence and associated factors of herbal medicine use among breast cancer patients: a cross-sectional study in Morocco.Ecancermedicalscience · 2024Article
- Antinociceptive Effects of Cannabichromene (CBC) in Mice: Insights from von Frey, Tail-Flick, Formalin, and Acetone Tests.Biomedicines · 2023Article
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Authors and funding
9 authors at 1 institution in 1 country.
Funding
Abstract
This study examined the effects of turmeric bioactive compounds, curcumin C3 complex® (CUR) and bisdemethoxycurcumin (BDMC), on mechanical hypersensitivity and the gene expression of markers for glial activation, mitochondrial function, and oxidative stress in the spinal cord and amygdala of rats with neuropathic pain (NP). Twenty-four animals were randomly assigned to four groups: sham, spinal nerve ligation (SNL, an NP model), SNL+100 mg CUR/kg BW p.o., and SNL+50 mg BDMC/kg BW p.o. for 4 weeks. Mechanical hypersensitivity was assessed by the von Frey test (VFT) weekly. The lumbosacral section of the spinal cord and the right amygdala (central nucleus) were collected to determine the mRNA expression of genes (IBA-1, CD11b, GFAP, MFN1, DRP1, FIS1, PGC1α, PINK, Complex I, TLR4, and SOD1) utilizing qRT-PCR. Increased mechanical hypersensitivity and increased gene expression of markers for microglial activation (IBA-1 in the amygdala and CD11b in the spinal cord), astrocyte activation (GFAP in the spinal cord), mitochondrial dysfunction (PGC1α in the amygdala), and oxidative stress (TLR4 in the spinal cord and amygdala) were found in untreated SNL rats. Oral administration of CUR and BDMC significantly decreased mechanical hypersensitivity. CUR decreased CD11b and GFAP gene expression in the spinal cord. BDMC decreased IBA-1 in the spinal cord and amygdala as well as CD11b and GFAP in the spinal cord. Both CUR and BDMC reduced PGC1α gene expression in the amygdala, PINK1 gene expression in the spinal cord, and TLR4 in the spinal cord and amygdala, while they increased Complex I and SOD1 gene expression in the spinal cord. CUR and BDMC administration decreased mechanical hypersensitivity in NP by mitigating glial activation, oxidative stress, and mitochondrial dysfunction.
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