Identification of Matrine as a Kirsten rats Arcomaviral oncogene homolog inhibitor alleviating chemotherapy-induced neuropathic pain

•Matrine ameliorated tactile hypersensitivity and pain sensitivity in mice afflicted with CIPN.•Matrine enhanced the functionality of the sciatic nerve and spinal cord neurons in CIPN mice.•Matrine, a natural KRAS inhibitor, is derived from the medicinal plant Sophora alopecuroides l. Chemotherapy-i...

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Veröffentlicht in:Phytomedicine (Stuttgart) 2024-09, Vol.132, p.155841, Article 155841
Hauptverfasser: Zhu, Chunhao, Zhang, Mengting, Gong, Shuaishuai, Du, Juan, Ma, Lin, Liu, Yue, Li, Yuxiang, Yu, Jianqiang, Liu, Ning
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Sprache:eng
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Zusammenfassung:•Matrine ameliorated tactile hypersensitivity and pain sensitivity in mice afflicted with CIPN.•Matrine enhanced the functionality of the sciatic nerve and spinal cord neurons in CIPN mice.•Matrine, a natural KRAS inhibitor, is derived from the medicinal plant Sophora alopecuroides l. Chemotherapy-induced peripheral neuropathy (CIPN) represents a prevailing and severe clinical concern, characterized by limited availability of clinically effective treatment strategies. Current evidence endorses matrine's potential as a neuroprotective and analgesic agent for CIPN. Nevertheless, the precise targets and mechanisms of action of matrine remain insufficiently explored, impeding comprehensive pharmacological investigation and clinical application. This study endeavors to elucidate the analgesic and neuroprotective effects of matrine in mice with vincristine-induced neuropathic pain. A focal point is the identification of matrine's specific target and the underlying molecular mechanisms governing its analgesic and neuroprotective actions. To discern matrine's analgesic effects in CIPN mice, we conducted behavioral experiments encompassing the Von Frey filament test and Hargreaves Test. Furthermore, we conducted electrophysiological and histopathological assessments involving HE staining, Nissl staining, and Fluoro-Jade B staining to evaluate matrine's effects on neuroprotection within dorsal root ganglia and the spinal cord of CIPN mice. Sequentially, thermal shift assay, GTP hydrolysis assay, and nucleotide exchange assay were executed to validate matrine's inhibitory effects on KRAS. Molecular docking and site-directed mutagenesis experiments were implemented to identify the precise binding pocket of matrine on KRAS. Lastly, matrine's inhibitory effects on downstream signaling pathways of KRAS were confirmed through experiments conducted at animal model. Matrine exhibited a notable increase in mechanical withdrawal threshold and thermal withdrawal latency in vincristine-treated mice. This compound substantially ameliorated the neurofunctional blockade associated with sensory and motor functions induced by vincristine. Moreover, matrine mitigated pathological damage within DRG and the L4-L5 spinal cord regions. The study's MST experiments indicated matrine's substantial elevation of KRAS's melting temperature. The GTP hydrolysis and nucleotide exchange assays revealed concentration-dependent inhibition of KRAS activity by matrine. Molecular docking provided insig
ISSN:0944-7113
1618-095X
1618-095X
DOI:10.1016/j.phymed.2024.155841