Low levels and partial exposure to palmitic acid improves mitochondrial function and the oxidative status of cultured cardiomyoblasts
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Abstract
Lipid overload or metabolic stress has gained popularity in research that explores pathological mechanisms that
may drive enhanced oxidative myocardial damage. Here, H9c2 cardiomyoblasts were exposed to various doses of
palmitic acid (0.06 to 1 mM) for either 4 or 24 h to study its potential physiological response to cardiac cells.
Briefly, assays performed included metabolic activity, cholesterol content, mitochondrial respiration, and
prominent markers of oxidative stress, as well as determining changes in mitochondrial potential, mitochondrial
production of reactive oxygen species, and intracellular antioxidant levels like glutathione, glutathione peroxidase and superoxide dismutase. Cellular damage was probed using fluorescent stains, annexin V and propidium
iodide. Our results indicated that prolonged exposure (24-hours) to palmitic acid doses ≥ 0.5 mM significantly
impaired mitochondrial oxidative status, leading to enhanced mitochondrial membrane potential and increased
mitochondrial ROS production. While palmitic acid dose of 1 mM appeared to induce prominent cardiomyoblasts
damage, likely because of its capacity to increase cholesterol content/ lipid peroxidation and severely suppressing intracellular antioxidants. Interestingly, short-term (4-hours) exposure to palmitic acid, especially for
lower doses (≤ 0.25 mM), could improve metabolic activity, mitochondrial function and protect against
oxidative stress induced myocardial damage. Potentially suggesting that, depending on the dose consumed or
duration of exposure, consumption of saturated fatty acids such as palmitic acid can differently affect the
myocardium. However, these results are still preliminary, and in vivo research is required to understand the
significance of maintaining intracellular antioxidants to protect against oxidative stress induced by lipid
overload
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a Biomedical Research and Innovation Platform, South African Medical Research Council, Tygerberg 7505, South Africa b Department of Biochemistry, Mafikeng Campus, Northwest University, Mmabatho 2735, South Africa c Department of Life and Environmental Sciences, Polytechnic University of Marche, Ancona 60131, Italy d Department of Clinical Sciences, Section of Biochemistry, Polytechnic University of Marche, Ancona 60131, Italy e School of Laboratory Medicine and Medical Sciences, University of KwaZulu-Natal, Durban 4000, South Africa f Centre for Cardiometabolic Research Africa (CARMA), Division of Medical Physiology, Stellenbosch University, Tygerberg 7505, South Africa g Department of Biochemistry and Microbiology, University of Zululand, KwaDlangezwa 3886, South Africa h Cochrane South Africa, South African Medical Research Council, Tygerberg 7505, South Africa
Citation
Mthembu, S.X., Mazibuko-Mbeje, S.E., Silvestri, S., Orlando, P., Marcheggiani, F., Cirilli, I., Nkambule, B.B., Muller, C.J., Tiano, L. and Dludla, P.V., 2024. Low levels and partial exposure to palmitic acid improves mitochondrial function and the oxidative status of cultured cardiomyoblasts. Toxicology Reports, 12, pp.234-243.
