Kinetic Parameters Analysis of Liver and Kidney Catalase Under The Influence of Cadmium and Mercury In Vitro

Authors

  • Ellsa Anggun Karantika Medical Education Program, Faculty of Medicine, University of Lambung Mangkurat, Banjarmasin, Indonesia
  • Supianur Supianur Medical Education Program, Faculty of Medicine, University of Lambung Mangkurat, Banjarmasin, Indonesia
  • Edyson Edyson Department of Medical Chemistry and Biochemistry, Faculty of Medicine, University of Lambung Mangkurat,Banjarmasin, Indonesia
  • Eko Suhartono Department of Chemistry/Biochemistry, Faculty of Medicine, University of Lambung Mangkurat. Banjarbaru, South Kalimantan

DOI:

https://doi.org/10.11594/jtls.06.02.01

Keywords:

Cadmium (Cd), catalase, kinetic parameters, mercury (Hg)

Abstract

Cadmium (Cd) and mercury (Hg) are toxic metals that affect human organs function, including liver and kidney. This toxic activity is because the heavy metal could induce oxidative stress and interfere antioxidant activities, including catalase (CAT). The present study was aims to evaluate the effect of Cd and Hg to liver and kidney CAT kinetic parameters in vitro. In this experiment, liver and kidney were taken from male rats (Rattus novergicus). Sample the homogenized and divided into three groups with; T0 served as control which contains liver or kidney homogenate + H2O2, T1 which contains liver or kidney homogenate + H2O2 + 0.03 mg/L CdSO4; and T2 which contains liver or kidney homogenate + H2O2 + 1 mg/L Hg. Solutions then incubated at 37ºC for 1 hour and then was prepared for CAT activity measurement. The CAT activity was measured using spectrophotometer at 240 nm. For measuring the kinetic parameters, different concentration of H2O2 were used. The kinetics parameters (Km and Vmax) were calculated using Lineweaver-Burk plot. The results shows that Cd and Hg could decrease the affinity of CAT-H2O2 complex which expressed by the higher Km and Vmax values. Also from the results, Cd has better activity to decreased the affinity of CAT-H2O2 complex than Hg. From this results, it can be concluded that Cd and Hg treatments could inhibit CAT activity in liver and kidney in vitro.

References

Aflanie I, Muhyi R, Suhartono E (2015) Effect of heavy metal on malondialdehyde and advanced oxidation pro-tein produtcs concentration: A focus on arsenic, cadmi-um, and mercury. JOMB. 4 (4): 332-337. doi: 10.12720/jomb.4.4.332-337.

Prokopowicz A, Pawlas N, Ochota P et al (2014) Blood levels of lead, cadmium, and mercury in healthy women in their 50s in urban area of poland: A pilot study. Pol J Envriron Stud. 23 (1): 167-175.

Olmedo P, Pla A, Hernandez AF et al (2013) Determina-tion of toxic elements (mercury, cadmium, lead, tin and arsenic) in fish and shellfish samples. Risk assessment for the consumers. Environt Int. 59: 63-72.

El Said AG, Badawy NA, Garamon SE (2012) Adsorption of cadmium (II) and mercury (II) onto natural adsorbent rice husk ash (RHA) from aqueous solutions: Study in single and binary system. IJC. 1: 58-68.

Ekpo KE, Asia IO, Amayo KO et al (2008) Determination of lead, cadmium and mercury in surrounding water and organs of some species of fish from Ikpoba river in Benin city, Nigeria. Int J Phys Sci. 3 (11): 289-292.

Morais S, Costa FG, Pereira ML (2012) Heavy metals and human health, Environmental Health - Emerging Issues and Practice, Prof. Jacques Oosthuizen (Ed.). InTech ISBN: 978-953-307-854-0.

Arroyo VS, Flores KM, Ortiz LB et al (2012) Liver and cadmium toxicity. J Drug Metab Toxicol. S5: 001. doi:10.4172/2157-7609.S5-001.

Karimi MM, Sani MJ, Mahmudabadi AZ et al (2012) Ef-fect of acute toxicity of cadmium in mice kidney cells. IJT. 6 (18): 691-698.

Suhartono E, Triawanti, Yunanto A et al (2013) Chronic cadmium hepatooxidative in rats: treatment with haruan fish (Channa striata) extract. APBEE Procedia. 5: 441-445.

Wibowo A, Rahaju FA, Iskandar et al (2014) The role of urinary cadmium on liver function and erythrocytes cell count in pregnancy. IJBBB. 4 (4): 224-228. doi: 10.7763/IJBBB.2014.V4.344.

Soderland P, Lovekar S, Weiner DE et al (2010) Chronic kidney disease associated with environmental toxins and exposures. Adv Chronic Kidney D. 17 (3): 254-264.

Hussein HK, Abu-Zinadah OA, El Rabey HA et al (2013) Estimation of some heavy metals in polluted well water and mercury accumulation in broiler organs. Braz Arch Biol Technol. 56 (5): 767-776.

Suhartono E, Triawanti, Leksono AS et al (2014) Oxida-tive stress and kidney glycation in rats exposed cadmium. IJCEA. 5 (6): 497-501. doi: 10.7763/IJCEA.2014.V5.435.

Sevcikova M, Modra H, Slaninova A et al (2011) Metals as a cause of oxidative stress in fish: A review. Vet Med Czeczh. 56 (11): 537-546.

Valko M, Morris H, Cronin MTD (2005) Metals, toxicity and oxidative stress. Curr Med Chem. 12: 1161-1208.

Kodydkova J, Vavrova L, Kocik M et al (2014) Human catalase, its polymorphism, regulation, and changes of its activity in different diseases. Folia Biol-Prague. 60: 153-167.

Glorieux C, Auquier J, Dejeans N et al (2014) Catalase expression in MCF-7 breast cancer cells is mainly con-trolled by PI3K/Akt/mTor signaling pathway. Biochem Pharmacol. 89: 217-223.

Aksoy Y, Balk M, Ogus IH et al (2004) The mechanism of inhibition of human erythrocyte catalase by Azide. Turk J Biol. 28: 65-70.

Shang ZC, Zhang LL, Wu ZJ et al (2012) The activity and kinetic parameters of oxidoreductases in phaeozem in re-sponse to long-term fertiliser management. J Soil Sci Plant Nutr. 12 (3): 605-615.

Choy D, Lee D, Ma J et al(2014) Phthalate confers protec-tion against UV-A irradiation but is an uncompetitive in-hibitor of bovine catalase at high concentrations. JEMI. 18: 82-86.

Schnell S (2014) Validity of the Michaelis–Menten equa-tion – steady-state or reactant stationary assumption: that is the question. FEBS Journal. 281: 464-472. doi:10.1111/febs.12564.

Sharma R (2012) Enzyme inhibition: mechanism and scope, enzyme inhbition and bioapplications. Prof Rakesh Sharma (Ed.). InTech. ISBN: 978-953-51-0585-5.

Jonsson CM, Aoyama H (2009) Extraction, partial charac-terization and susceptibility to Hg2+ of acid phosphatase from the microalgae Pseudokirchneriella subcapitata. Sci Agric (Piracicaba, Braz). 66 (5): 634-642.

Duruibe JO, Ogwuegbu MOC, Egwurugwu JN (2007) Heavy metal pollution and human biotoxic effects. Int J Phys Sci. 2 (5): 112-118.

Aruldoss V, Kalaichelvan PT (2014) Production of cata-lase by solid state fermentation using different agro and fruit peel wastes as substrates. Journal of Modern Bio-technology. 3 (1): 8-13.

Downloads

Published

2016-05-31

Issue

Section

Articles