Abstract
Cannabidiol (CBD) and cannabigerol (CBG) are the two main non-psychotropic phytocannabinoids with high application potential in drug development. Both substances are redox-active and are intensively investigated for their cytoprotective and antioxidant action in vitro. In this study, we focused on an in vivo safety evaluation and the effect of CBD and CBG on the redox status in rats in a 90-d experiment. The substances were administered orogastrically in a dose of 0.66mg synthetic CBD or 0.66mg/1.33mg CBG/kg/day. CBD produced no changes in the red or white blood count or biochemical blood parameters in comparison to the control. No deviations in the morphology or histology of the gastrointestinal tract and liver were observed. After 90 d of CBD exposure, a significant improvement in redox status was found in the blood plasma and liver. The concentration of malondialdehyde and carbonylated proteins was reduced compared to the control. In contrast to CBD, total oxidative stress was significantly increased and this was accompanied by an elevated level of malondialdehyde and carbonylated proteins in CBG-treated animals. Hepatotoxic (regressive changes) manifestations, disruption in white cell count, and alterations in the ALT activity, level of creatinine and ionized calcium were also found in CBG-treated animals. Based on liquid chromatography-mass spectrometry analysis, CBD/CBG accumulated in rat tissues (in the liver, brain, muscle, heart, kidney and skin) at a low ng level per gram. Both CBD and CBG molecular structures include a resorcinol moiety. In CBG, there is an extra dimethyloctadienyl structural pattern, which is most likely responsible for the disruption to the redox status and hepatic environment. The results are valuable to further investigation of the effects of CBD on redox status and should contribute towards opening up critical discussion on the applicability of other non-psychotropic cannabinoids.
Keywords: CBD protective properties, CBG toxicity, antioxidant, in vivo experiment, phytocannabinoid
Copyright © 2023. Published by Elsevier B.V.
Conflict of interest statement
Declaration of Competing Interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper Declaration of competing interests J.S. is CEO and has financial interest in CB21 Pharma Ltd., CBDepot Ltd., PharmaCan Ltd. and CB21 R&D. J.V. and P.B. are involved in the scientific board of CB21 Pharma Ltd. The authors are engaged in scientific collaboration with and have financial support from CB21 Pharma Ltd. and CBDepot Ltd.
Similar articles
-
Interaction between non-psychotropic cannabinoids in marihuana: effect of cannabigerol (CBG) on the anti-nausea or anti-emetic effects of cannabidiol (CBD) in rats and shrews.Psychopharmacology (Berl). 2011 Jun;215(3):505-12. doi: 10.1007/s00213-010-2157-4. Epub 2011 Jan 18.PMID: 21243485
-
Antioxidant function of phytocannabinoids: Molecular basis of their stability and cytoprotective properties under UV-irradiation.Free Radic Biol Med. 2021 Feb 20;164:258-270. doi: 10.1016/j.freeradbiomed.2021.01.012. Epub 2021 Jan 13.PMID: 33453360
-
In Vitro and Clinical Evaluation of Cannabigerol (CBG) Produced via Yeast Biosynthesis: A Cannabinoid with a Broad Range of Anti-Inflammatory and Skin Health-Boosting Properties.Molecules. 2022 Jan 13;27(2):491. doi: 10.3390/molecules27020491.PMID: 35056807 Free PMC article.
-
The Origin and Biomedical Relevance of Cannabigerol.Int J Mol Sci. 2022 Jul 19;23(14):7929. doi: 10.3390/ijms23147929.PMID: 35887277 Free PMC article. Review.
-
Non-psychotropic phytocannabinoid interactions with voltage-gated sodium channels: An update on cannabidiol and cannabigerol.Front Physiol. 2022 Nov 10;13:1066455. doi: 10.3389/fphys.2022.1066455. eCollection 2022.PMID: 36439273 Free PMC article. Review.
LinkOut – more resources
-
Full Text Sources
-
Research Materials
-
Miscellaneous

