Key result
Vitamin E suppresses oxidative stress and downregulates AKT and JUN/FOS signaling in experimental hyperthyroidism.
Why the study?
The role of oxidative stress and redox signaling in activating the AKT1 pathway leading to cardiac hypertrophy in experimental hyperthyroidism was investigated.
Hypothesis-generating in hyperthyroid rat models; leaves open clinical translation and requires human trials.
This study was conducted to test whether oxidative stress activates the intracellular protein kinase B (AKT1) signaling pathway, which culminates with cardiac hypertrophy in experimental hyperthyroidism. Male Wistar rats were divided into four groups: control, vitamin E, thyroxine (T(4)), and T(4)+vitamin E. Hyperthyroidism was induced by T(4) administration (12 mg/l in drinking water for 28 days). Vitamin E treatment was given during the same period via s.c. injections (20 mg/kg per day). Morphometric and hemodynamic parameters were evaluated at the end of the 4-week treatment period. Protein oxidation, redox state (reduced glutathione, GSH/glutathione dissulfide, GSSG), vitamin C, total radical-trapping antioxidant potential (TRAP), hydrogen peroxide (H2O2), and nitric oxide metabolites (NO(X)) were measured in heart homogenates. The p-AKT1/AKT1 ratio, p-glycogen-synthase kinase (GSK)3B/GSK3B ratio, FOS, and JUN myocardial protein expression were also quantified by western blot after 4 weeks. Increases in biochemical parameters, such as protein oxidation (41%), H2O2 (62%), and NO(X) (218%), and increase in the left ventricular end-diastolic pressure were observed in the T(4) group. T(4) treatment also caused a decrease in GSH/GSSG ratio (83%), vitamin C (34%), and TRAP (55%). These alterations were attenuated by vitamin E administration to the hyperthyroid rats. Expression of p-AKT1/AKT1, p-GSK3B/GSK3B, FOS, and JUN were elevated in the T(4) group (by 69, 37, 130, and 33% respectively), whereas vitamin E administration promoted a significant reduction in their expression. These results indicate that oxidative stress plays an important role in cardiac hypertrophy, and suggest redox activation of AKT1 and JUN/FOS signaling pathways with H2O2 acting as a possible intracellular mediator in this adaptive response to experimental hyperthyroidism.
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Araújo et al. (2008) studied Experimental hyperthyroidism-induced cardiac hypertrophy. Vitamin E vs. Thyroxine (T4) alone, control was evaluated on Protein oxidation, redox state, H2O2, NO(X), and expression of AKT1 and JUN/FOS signaling pathways. Vitamin E administration attenuated T4-induced increases in oxidative stress parameters and reduced the elevated expression of p-AKT1, p-GSK3B, FOS, and JUN in experimental hyperthyroid rats.
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