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Nkambule, B. B.

Publications and source records attributed to Nkambule, B. B..

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Palmitate-induced toxicity is associated with impaired mitochondrial respiration and accelerated oxidative stress in cultured cardiomyocytes: the critical role of Coenzyme Q9/10

Impaired mitochondrial function concomitant to enhanced oxidative stress-induced damage are well established mechanisms involved in hyperlipidemia-induced cardiotoxicity. Coenzyme Q9/10 (CoQ) is known to be a critical component of the mitochondrial electron transport chain that efficiently supports the process of bioenergetics in addition to its antioxidant activities. However, there is very limited information on the direct effect of myocardial lipid overload on endogenous CoQ levels in association with mitochondrial respiration and oxidative stress status. Here, such effects were explored by exposing H9c2 cardiomyocytes to various doses (0.15 to 1 mM) of palmitate for 24 hours. The results demonstrated that palmitate doses [≥] 0.25 mM are enough to impair mitochondrial respiration and cause oxidative stress. Although endogenous CoQ levels are enhanced by palmitate doses [≤] 5 mM, this is not enough to counteract oxidative stress, but is sufficient to maintain cell viability of cardiomyocytes, suggesting a compensation mechanism. Palmitate doses > 5 mM caused severe mitochondrial toxicity, including reduction of cell viability. Interestingly, enhancement of CoQ levels with the lowest dose of palmitate (0.15 mM) was accompanied by a significantly reduction of CoQ oxidation status, as well as low cytosolic production of reactive oxygen species. From the overall findings, it appears that CoQ response may be crucial to improve mitochondrial function and thus protect against hyperlipidemia-induced insult. These results further suggest that therapeutic agents that can stimulate endogenous levels of CoQ may be beneficial in protecting the myocardium against diabetes associated complications.

biochemistry

The short-term high fat diet-induced increase in %5-methylcytosine expression in peripheral blood T lymphocytes, is attenuated by low-dose aspirin

ObjectiveTo assess peripheral lymphocyte DNA methylation profiles in prediabetes using a high fat-diet-fed C57BL/6 animal model. We further evaluated whether low dose-aspirin, or low-dose aspirin in combination with metformin, could modulate global DNA methylation levels in peripheral blood lymphocytes.\n\nMethodsTwenty-eight (28) male C57BL/6 mice were used in two experimental phases. The first experiment involved animals (n=16) which were randomised to receive a low-fat diet (LFD) or high-fat diet (HFD) (n = 8/group) for 10 weeks. Whereas in the second experiment, HFD-fed mice (n=15) were randomised into 3 treatment groups, a low-dose aspirin (LDA), LDA and metformin group, and a clopidogrel group. DNA methylation profiles of were determined using flow cytometry.\n\nResultsThe HFD group showed moderate weight gain and elevated postprandial blood glucose levels when compared to the LFD group after 2 weeks of HFD-feeding (p < 0.05). Interestingly, the HFD group had elevated levels of T cells expressing high levels %5-methylcytosine (p<0, 05). Notably, these elevated levels were lowered by short-term low-dose aspirin treatment.\n\nDiscussionT cells are involved in the propagation of the inflammatory response. Persistent T cell activation promotes chronic inflammation and insulin resistance. Low-dose aspirin may be effective in modulating T cell-specific global methylation.

immunology