Key result
Lactate perfusion lowers mct1 expression in rat MI hearts but fails to alter other LOC-related genes.
Why the study?
The modulatory role of lactate on lactate oxidation complex-related gene expression and cardiac hemodynamics under pathological cardiac stress after myocardial infarction remains to be elucidated.
In a rat model of chronic myocardial infarction, lactate loses its physiological ability to modulate cardiac lactate oxidation complex-related gene expression and perfusion pressure.
Suggests disrupted lactate gene regulation post-MI in rats; hypothesis-generating for metabolic remodeling, should not yet change practice.
Lactate modulates the expression of lactate oxidation complex (LOC)-related genes and cardiac blood flow under physiological conditions, but its modulatory role remains to be elucidated regarding pathological cardiac stress. The present study evaluated the effect of lactate on LOC-related genes expression and hemodynamics of hearts submitted to myocardial infarction (MI). Four weeks after MI or sham operation, isolated hearts of male Wistar rats were perfused for 60 min with Na+-lactate (20 mM). As expected, MI reduced cardiac contractility and relaxation with no changes in perfusion. The impaired cardiac hemodynamics were associated with increased reactive oxygen species (ROS) levels (Sham: 19.3±0.5 vs MI: 23.8±0.3 µM), NADPH oxidase (NOX) activity (Sham: 42.2±1.3 vs MI: 60.5±1.5 nmol·h-1·mg-1) and monocarboxylate transporter 1 (mct1) mRNA levels (Sham: 1.0±0.06 vs MI: 1.7±0.2 a.u.), but no changes in superoxide dismutase (SOD), catalase, NADH oxidase (NADox), and xanthine oxidase activities. Lactate perfusion in MI hearts had no additional effect on ROS levels, NADox, and NOX activity, however, it partially reduced mct1 mRNA expression (MI-Lactate 1.3±0.08 a.u.). Interestingly, lactate significantly decreased SOD (MI-Lactate: 54.5±4.2 µmol·mg-1·min-1) and catalase (MI: 1.1±0.1 nmol·mg-1·min-1) activities in MI. Collectively, our data suggest that under pathological stress, lactate lacks its ability to modulate the expression of cardiac LOC-related genes and the perfused pressure in hearts submitted to chronic MI. Together, these data contribute to elucidate the mechanisms involved in the pathogenesis of heart failure induced by MI.
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Gabriel‐Costa et al. (2018) studied Myocardial infarction. Na+-lactate vs. Sham operation or MI without lactate was evaluated on LOC-related genes expression and hemodynamics. In isolated hearts from rats with chronic myocardial infarction, lactate perfusion (20 mM) partially reduced mct1 mRNA expression (1.3 a.u.) but failed to modulate other LOC-related genes.
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