Cleomin Exerts Acute Antinociceptive Effects in Mice via GABA B and Muscarinic Receptors.
Luíza Carolina França OpretzkaMax Denisson Maurício VianaAlyne Almeida de LimaThalisson Amorim de SouzaMarcus Tullius ScottiJosean Fechine TavaresMarcelo Sobral da SilvaMilena Botelho Pereira SoaresCristiane Flora VillarrealPublished in: Pharmaceuticals (Basel, Switzerland) (2023)
Cleomin, a 1,3-oxazolidine-2-thione, was recently isolated from Neocalyptrocalyx longifolium , a species traditionally used for treating painful conditions. Reports about the pharmacological activities of cleomin are lacking. Here, the antinociceptive effects of cleomin were investigated using mice models of pain, namely the formalin, the cold plate, and the tail flick tests. Motor integrity was assessed in the rota-rod test. Antagonism assays and in silico docking analyses were performed to investigate the putative mechanisms of action. Cleomin (12.5-25 mg/kg), at doses that did not induce motor impairment, induced dose-dependent antinociception in both early and late phases of the formalin test and reduced nociceptive behaviors in both the cold plate and tail flick tests. Pretreatments with phaclofen and atropine attenuated the antinociceptive effects of cleomin, implicating the involvement of GABA B and muscarinic receptors. In silico docking studies suggested satisfactory coupling between cleomin and GABA B and M 2 receptors, hence corroborating their role in cleomin's activity. Pretreatments with naloxone, yohimbine, bicuculline, and methysergide did not affect the antinociception of cleomin. In silico pharmacokinetics prediction showed a good drug ability profile of cleomin. In conclusion, cleomin promoted antinociception mediated by GABA B and muscarinic receptors. These findings support further investigation of the analgesic potential of cleomin.
Keyphrases
- molecular docking
- anti inflammatory
- neuropathic pain
- molecular dynamics simulations
- drug induced
- molecular dynamics
- chronic pain
- high fat diet induced
- protein protein
- liver failure
- type diabetes
- small molecule
- emergency department
- pain management
- spinal cord
- insulin resistance
- intensive care unit
- respiratory failure
- endothelial cells
- skeletal muscle
- mass spectrometry
- atomic force microscopy
- case control
- oxidative stress
- adipose tissue
- extracorporeal membrane oxygenation
- single molecule