Department of Pharmacology and Toxicology, Faculty of Pharmacy, Cairo University, Egypt.
Eur J Pharmacol. 2012 Nov 5;694(1-3):75-81. doi: 10.1016/j.ejphar.2012.07.036. Epub 2012 Aug 23.
Metabolic derangements and bioenergetic failure are major contributors to sepsis-induced multiple organ dysfunctions. Due to the well known role of magnesium (Mg) as a cofactor in many enzymatic reactions that involve energy creation and utilization, the present investigation was directed to estimate the cardioprotective effect of Mg supplementation in lipopolysaccharide (LPS)-induced metabolic energy changes in mice. Oral doses of Mg aspartate (20 or 40 mg/kg) were administered once daily for 7 day. Mice were then subjected to a single intraperitoneal injection of LPS (2 mg/kg). Plasma was separated 3 h after LPS injection for determination of creatine kinase-MB activity. Animals were then sacrificed and the hearts were separated for estimation of tissue thiobarbituric acid reactive substances, reduced glutathione, lactate, pyruvate, adenine nucleotides, creatine phosphate and cardiac Na(+),K(+)-ATPase activity. Finally, electron microscopic examination was performed to visualize the protective effects of Mg pretreatment on mitochondrial ultrastructure. In general, the higher dose of Mg was more effective than the lower dose in ameliorating creatine kinase-MB elevation and the state of oxidative stress, lactate accumulation, pyruvate reduction as well as preserving creatine phosphate, adenine nucleotides and Na(+),K(+)-ATPase activity. Moreover, the higher dose of Mg provided a significant cardioprotection against the mitochondrial ultrastructural changes. Mg therapy can afford a significant protection against metabolic energy derangements and mitochondrial ultrastructural changes induced by LPS cardiotoxicity in mice.
代谢紊乱和生物能量衰竭是导致脓毒症引起的多器官功能障碍的主要因素。由于镁 (Mg) 作为许多涉及能量产生和利用的酶反应的辅助因子的作用是众所周知的,因此本研究旨在评估 Mg 补充对脂多糖 (LPS) 诱导的小鼠代谢能量变化的心脏保护作用。每天口服给予天冬氨酸镁 (20 或 40 mg/kg) 一次,共 7 天。然后,小鼠接受单次腹腔内注射 LPS(2 mg/kg)。在 LPS 注射后 3 小时分离血浆,用于测定肌酸激酶-MB 活性。然后处死动物,分离心脏以估计组织硫代巴比妥酸反应物质、还原型谷胱甘肽、乳酸、丙酮酸、腺嘌呤核苷酸、磷酸肌酸和心脏 Na(+),K(+)-ATP 酶活性。最后,进行电子显微镜检查以观察 Mg 预处理对线粒体超微结构的保护作用。一般来说,较高剂量的 Mg 比低剂量更有效地改善肌酸激酶-MB 升高和氧化应激状态,乳酸积累,丙酮酸减少,以及保持磷酸肌酸、腺嘌呤核苷酸和 Na(+),K(+)-ATP 酶活性。此外,较高剂量的 Mg 对线粒体超微结构变化提供了显著的心脏保护作用。Mg 治疗可以为 LPS 心肌毒性引起的代谢能量紊乱和线粒体超微结构变化提供显著的保护。