Study of Antioxidant Properties and Influence on Mitochondrial Bioenergetics of a Composition Consisting of Mono Ammonium Salt of Glycyrrhizic Acid and Amino Acids

Authors

  • Surayyo Dalimova
  • Davron Tukhtaev
  • Guzal Muhammadjonova
  • Mukhlisa Dadakhonova
  • Muslima Yunusova
  • Nigora Khamdamova
  • Lenara Seit-Asan

DOI:

https://doi.org/10.52783/jns.v14.2379

Keywords:

Antioxidant, Mitochondria, Paracetamol, Lipid peroxidation, malondialdehyde, cytochrome P450, Amino acids

Abstract

The antioxidant effect and influence of a composition consisting of monoammonium salt of glycyrrhizic acid (MASGA) and amino acids - cysteine, methionine, and tryptophan on the bioenergetics of rat liver mitochondria in paracetamol-induced liver damage in rats were studied. It has been established that paracetamol causes a significant increase in the liver homogenate of diene conjugates and conjugated trienes, as well as a secondary product of lipid peroxidation (LPO) - malondialdehyde (MDA). In the liver mitochondria, under the influence of paracetamol, there is a decrease in respiration and oxidative phosphorylation processes. The introduction of the studied composition to hepatitis animals reduced the content of primary and secondary LPO products and partially restored the functional state of the mitochondria.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

References

Тодоров И.И. Митохондрии: окислительный стресс и мутации митохондриальной ДНК в развитии патологий, процессе старения и апоптозе // Российский химический журнал. – 2007. – Т. 51, № 1. – С. 93–106.,

Dalimova S. et al. Influence of the supramolecular complex of glycyrrhizic acid with quercetin on age-related functional changes in rat brain mitochondria. Plant Cell Biotechnology and Molecular Biology 21(45&46):63-73; 2020

Mahadevan S, McKiernan P, Davies P et al. Paracetamol-induced hepatotoxicity // Arch. Dis. Child. 2006. 91. P. 598-603.

Dambach DM, Durham SK, Laskin JD, Laskin DL Distinct roles of NF- kappaB p50 in the regulation of acetaminophen-induced inflammatory mediator production and hepatotoxicity // Toxicol. Appl. Pharmacol. 2006. V. 211, 2. P. 157-165.

Jaeschke H., Bajt M. Intracellular signaling mechanisms of acetaminophen-induced liver cell death // Toxicol. Sci. 2006. V. 89, 1. No. P. 31—41

Jaeschke H., Knight T., Bajt M. The role of oxidant stress and reactive nitrogen species in acetaminophen hepatotoxicity // Toxicol. Lett. 2003. V. 144, 3. P. 279—288

Li X., Sun R., Liu R. Natural products in licorice for the therapy of liver diseases: Progress and future opportunities //Pharmacological Research. – 2019. – V. 144. – P. 210-226.

Bin P. et al. Oxidation resistance of the sulfur amino acids: methionine and cysteine //BioMed research international. – 2017. – V. 2017. P. 1-6 DOI: 10.1155/2017/9584932

Dalimova S., Kuziev Sh. et al. Influence of Herbal Preparations on the Process of Lipid Peroxidation and Enzyme Activity of Rat Liver Mitochondria with Drug Damage. Naturalista campano. Volume 28 issue 1, 2024

Kondrashova M., Zakharchenko M., Khunderyakova N. Preservation of the in vivo state of mitochondrial network for ex vivo physiological study of mitochondria // Int. J. Biochem. Cell Biol. 2009. 41. P. 2036-2050

Владимиров Ю.А., Арчаков А.И. Перекисное окисление липидов в биологических мембранах. М.: Медицина 1972. 258 с.

Martin Holtzauer. Basic methods for the biochemical lab. Springer Verlag Berlin Heidelberg; 2006.

Pu S., Ren L., Liu Q., Kuang J., Shen J., Cheng S., Zhang Y., Jiang W., Zhang Z., Jiang C., He J. Loss of 5-lipoxygenase activity protects mice against paracetamol-induced liver toxicity. Br J Pharmacol 2016; 173(1): 66–76 https://doi.org/10.1111/bph.13336

Hohmann M.S., Cardoso R.D.R., Fattori V., Arakawa N.S., Tomaz J.C., Lopes N.P., Casagrande R., Verri W.A. Jr. Hypericum perforatum reduces paracetamol-induced hepatotoxicity and lethality in mice by modulating inflammation and oxidative stress. Phytother Res 2015; 29(7): 1097–1101, https://doi.org/10.1002/ptr.5350

Zubairi MB, Ahmed JH, Al-Haroon SS Effect of adrenergic blockers, carvedilol, prazosin, metoprolol and combination of prazosin and metoprolol on paracetamol-induced hepatotoxicity in rabbits. Indian J Pharmacol 014;46(6):644–648. DOI:10.4103/0253-7613.144937

Ekor M., Odewabi AO, Kale OE, Bamidele TO, Adesanoye OA, Farombi EO Modulation of paracetamol-induced hepatotoxicity by phosphodiesterase isozyme inhibition in rats: a preliminary study. J Basic Clinical Physiol Pharmacol 2013; 24(1): 73–79, https://doi.org/10.1515/jbcpp-2012-0043

Polat M., Cerrah S., Albayrak B., Ipek S., Arabul M., Aslan F., Yilmaz O. Assessing the effect of leptin on liver damage in case of hepatic injury associated with paracetamol poisoning. Gastroenterol Res Pract 2015; 357360, https://doi.org/10.1155/2015/357360

Wang X., Wu Q., Liu A., Anadón A., Rodríguez JL, Martínez- Larrañaga MR, Yuan Z., Martínez MA Paracetamol: overdose-induced oxidative stress toxicity, metabolism, and protective effects of various compounds in vivo and in vitro. Drug Metab Rev 2017; 49(4): 395–437, https://doi.org/10.1080/03602532.2017.1354014

Das S., Roy P., Ghosh Auddy R., Mukherjee A. Silymarin nanoparticle prevents paracetamol-induced hepatotoxicity. Int J Nanomed 2011; 6: 1291–1301, https://doi.org/10.2147/ijn.s15160

Jaeschke H, McGill MR, Ramachandran A. Oxidant stress, mitochondria, and cell death mechanisms in drug-induced liver injury: lessons learned from acetaminophen hepatotoxicity. Drug Metab Rev, 2012, 44: 88–106.

N Madinah, M Nozmo, I Ezekiel. The protective effects of aqueous extract of Carica papaya seeds in paracetamol-induced nephrotoxicity in male Wistar rats. Afr Health Sci 2015; 15(2): 598–605, https://doi.org/10.4314/ahs.v15i2.37

Okovity S.V., Raikhelson K.L., Volnukhin A.V., Kudlai D.A. Hepatoprotective properties of glycyrrhizic acid. Experimental and Clinical Gastroenterology. 2020;(12):96-108. (In Russ.) https://doi.org/10.31146/1682-8658-ecg-184-12-96-108

Selyutina O. Yu., Polyakov N. E. Glycyrrhizic acid as a multifunctional drug carrier – From physicochemical properties to biomedical applications: A modern insight on the ancient drug. International Journal of Pharmaceutics. 2019; 559: 271–279. https://doi.org/10.1016/j.ijpharm.2019.01.047

Li J.Y., Cao H. Y., Liu P., et al. Glycyrrhizic acid in the treatment of liver diseases: literature review. BioMed Research International. 2014; Article ID872139. https://doi.org/10.1155/2014/872139

Fan H. et al. The key roles of reactive oxygen species in microglial inflammatory activation: Regulation by endogenous antioxidant system and exogenous sulfur-containing compounds//European Journal of Pharmacology. – 2023. https://doi.org/10.1016/j.ejphar.2023.175966

Hu Y. et al. Research Progress on the Preparation and Function of Antioxidant Peptides from Walnuts //International Journal of Molecular Sciences. – 2023. – V. 24. – №. 19. https://doi.org/10.3390/ijms241914853

Nayak B. N., Buttar H. S. Evaluation of the antioxidant properties of tryptophan and its metabolites in in vitro assay //Journal of Complementary and Integrative Medicine. – 2016. – V. 13. – №. 2. – P. 129-136. https://doi.org/10.1515/jcim-2015-0051

Prot J.M., Bunescu A., Elena-Herrmann B., Aninat C., Snouber L.C., Griscom L., Razan F., Bois F.Y., Legallais C., Brochot C., Corlu A., Dumas M.E., Leclerc E. Predictive toxicology using systemic biology and liver microfluidic “on chip” approaches: application to acetaminophen injury. Toxicol Appl Pharmacol 2012; 259(3): 270–280. https://doi.org/10.1016/j.taap.2011.12.017

Gall W.E., Beebe K., Lawton K.A., Adam K.P., Mitchell M.W., Nakhle P.J., Ryals J.A., Milburn M.V., Nannipieri M., Camastra S., Natali A., Ferrannini E.; RISC Study Group. α-Hydroxybutyrate is an early biomarker of insulin resistance and glucose intolerance in a nondiabetic population. PLoS One 2010; 5(5): e10883, https://doi.org/10.1371/journal.pone.0010883

Hinson JA, Roberts DW, James LP. Mechanisms of acetaminophen-induced liver necrosis. Handb Exp Pharmocol, 2010:(196):369-405. https://doi.org/10.1007/978-3-642-00663-0_12

Yuan L., Kaplowitz N. Mechanisms of drug-induced liver injury. Clin Liver Dis. 2013, Nov 17(4):507-18 vii. https://doi.org/10.1016/j.cld.2013.07.002

Downloads

Published

2025-03-20

How to Cite

1.
Dalimova S, Tukhtaev D, Muhammadjonova G, Dadakhonova M, Yunusova M, Khamdamova N, Seit-Asan L. Study of Antioxidant Properties and Influence on Mitochondrial Bioenergetics of a Composition Consisting of Mono Ammonium Salt of Glycyrrhizic Acid and Amino Acids. J Neonatal Surg [Internet]. 2025Mar.20 [cited 2025Oct.10];14(7S):141-7. Available from: https://www.jneonatalsurg.com/index.php/jns/article/view/2379