pH Dependence of the Formation of Malondialdehyde (MDA) in the Reaction of 2-Thiobarbituric Acid (2-TBA) with Local Yoghurt (Nunu)

Authors

  • Osuendo Solomon Osuegba
    Department of Chemistry, Nasarawa State University, Keffi, Nigeria
  • B. O. Atolaiye
    Department of Chemistry, Nasarawa State University, Keffi, Nigeria
  • E. C. Chukwuneke
    Department of Chemistry, Nasarawa State University, Keffi, Nigeria

Keywords:

pH dependence , Reaction , Local yogourt , Malondialdehyde , Thiobarbituric acid

Abstract

The study investigates the pH dependence of malondialdehyde (MDA) formation in local yoghurt (Nunu) through its reaction with 2-thiobarbituric acid (2-TBA), using the Thiobarbituric Acid Reactive Substances (TBARS) assay. A total of 10 experimental setups were conducted across seven pH levels (5.6 to 9.0) and ten graded 2-TBA volumes (10 μL to 100 μL). Samples were allowed to equilibrate for up to 12 h before UV-Visible spectrophotometric measurements were taken at 532 nm. Descriptive statistics and comparative analyses were used to evaluate mean MDA concentrations across conditions. The results showed no clear linear relationship between pH and MDA levels; however, a consistent spike in MDA concentrations was observed at alkaline pH, notably at pH 8.6. The highest MDA concentration (1.0600 ± 0.0011 mg/L) was recorded at this pH, while the lowest was at pH 5.6 (0.241 ± 0.010 L), indicating enhanced lipid peroxidation or increased TBA-MDA complex stability in alkaline environments. This research highlights the complex pH sensitivity of lipid peroxidation in fermented dairy products and underscores the need to consider environmental factors such as pH when assessing oxidative stress markers like MDA. Future studies may benefit from refining the pH gradient intervals, extending incubation times, incorporating centrifugation steps, examining the effect of IHP (inositolhexakisphosphate) on the affinity of local yoghurt for 2-Thiobarbituric acid, and validating MDA levels through more specific techniques like HPLC. The findings hold implications for food quality monitoring, oxidative stress assessment, and health risk evaluations associated with lipid peroxidation products in traditional dairy foods.

Dimensions

Akabanda, F., Owusu-Kwarteng, J., Tano-Debrah, K., Glover, R. L. K., & Parkouda, C. (2013). Characterization of the dominant microbiota involved in the spontaneous fermentation of Ghanaian traditional fermented milk product, Nunu. International Journal of Food Microbiology, 162(2), 113–123.

Owusu-Kwarteng, J., Tano-Debrah, K., Akabanda, F., & Jespersen, L. (2015). Technological properties and probiotic potential of Lactobacillus fermentum strains isolated from West African fermented millet dough. BMC Microbiology, 15(1), 261.

Amanabo, M. A., Jonathan, G. O., & Amadi, J. E. (2013). Nutritional and microbiological composition of nunu: A spontaneously fermented milk product in Nigeria. African Journal of Food Science and Technology, 4(7), 143–150.

Egwim, E. C., Ilodibia, C. V., & Egwuche, R. U. (2012). Fermentation process and microbial profile of Nigerian dairy product Nunu. Nigerian Journal of Biochemistry and Molecular Biology, 27(2), 49–56.

Owusu-Kwarteng, J., Akabanda, F., Tano-Debrah, K., & Jespersen, L. (2012). The use of starter cultures in the fermentation of Ghanaian milk products. African Journal of Food Science, 6(4), 87–95.

Animal Models of Diabetic Complications Consortium (AMDCC). (2014). TBARS Assay Protocol.

Griffiths, H. R., et al. (2002). Biomarkers. Molecular Aspects of Medicine, 23(1–3), 101–208.

Niki, E. (2009). Lipid peroxidation: Physiological levels and dual biological effects. Free Radical Biology and Medicine, 47(5), 469–484.

Mayne, S. T. (2003). Antioxidant nutrients and chronic disease: Use of biomarkers of exposure and oxidative stress status in epidemiologic research. Journal of Nutrition, 133(Suppl 3), 933S–940S.

Lykkesfeldt, J. (2007). Malondialdehyde as biomarker of oxidative damage: Comparison of assays. Clinical Chemistry, 53(12), 2212–2214.

Morales, M., & Munné-Bosch, S. (2019). Malondialdehyde: Facts and artifacts. Plant Physiology, 180(3), 1246–1250.

Eloff, J. N. (2014). Avoiding pitfalls in determining antioxidant activity of plant extracts. African Journal of Traditional, Complementary and Alternative Medicines, 11(5), 43–49.

Marnett, L. J. (2002). Oxy radicals, lipid peroxidation and DNA damage. Toxicology, 181–182, 219–222.

Pellegrini, N., et al. (2005). Total antioxidant capacity of plant foods, beverages and oils consumed in Italy assessed by three different in vitro assays. Journal of Nutrition, 133(9), 2812–2819.

Dzoyem, J. P., Eloff, J. N., & McGaw, L. J. (2014). In vitro antibacterial, antioxidant and cytotoxic activity of leaf extracts of 12 African Combretum species. Pharmaceutical Biology, 52(6), 618–624.

Del Rio, D., Stewart, A. J., & Pellegrini, N. (2005). A review of recent studies on malondialdehyde as toxic molecule and biological marker of oxidative stress. Nutrition, Metabolism and Cardiovascular Diseases, 15(4), 316–328.

Esterbauer, H., Schaur, R. J., & Zollner, H. (1991). Chemistry and biochemistry of 4-hydroxynonenal, malonaldehyde and related aldehydes. Free Radical Biology and Medicine, 11(1), 81–98.

Kuete, V. (Ed.). (2013). Toxicological survey of African medicinal plants. Elsevier.

Kenenisa, E. (2020). Biomarkers and their significance in human disease diagnosis. International Journal of Medical Research & Health Sciences, 9(6), 18–27.

Farmer, E. E., & Mueller, M. J. (2013). ROS-mediated lipid peroxidation and RES-activated signaling. Annual Review of Plant Biology, 64, 429–450.

Davey, M. W., et al. (2005). Plant L-ascorbic acid: Chemistry, function, metabolism, bioavailability and effects of processing. Journal of the Science of Food and Agriculture, 80(7), 825–860.

Janero, D. R. (1990). Malondialdehyde and thiobarbituric acid-reactivity as diagnostic indices of lipid peroxidation and peroxidative tissue injury. Free Radical Biology and Medicine, 9(6), 515–539.

Marnett, L. J. (2002). Lipid peroxidation-DNA damage by malondialdehyde. Mutation Research/Fundamental and Molecular Mechanisms of Mutagenesis, 424(1–2), 83–95.

cover

Published

2026-09-02

How to Cite

pH Dependence of the Formation of Malondialdehyde (MDA) in the Reaction of 2-Thiobarbituric Acid (2-TBA) with Local Yoghurt (Nunu). (2026). Lafia Journal of Scientific and Industrial Research, 4(2), 108-117. https://doi.org/10.62050/ljsir2026.v4n2.631

How to Cite

pH Dependence of the Formation of Malondialdehyde (MDA) in the Reaction of 2-Thiobarbituric Acid (2-TBA) with Local Yoghurt (Nunu). (2026). Lafia Journal of Scientific and Industrial Research, 4(2), 108-117. https://doi.org/10.62050/ljsir2026.v4n2.631

Similar Articles

21-30 of 57

You may also start an advanced similarity search for this article.