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首页> 外文期刊>Chemico-biological interactions >Sulfated polysaccharides from the edible marine algae Padina tetrastromatica attenuates isoproterenol-induced oxidative damage via activation of PI3K/Akt/Nrf2 signaling pathway - An in vitro and in vivo approach
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Sulfated polysaccharides from the edible marine algae Padina tetrastromatica attenuates isoproterenol-induced oxidative damage via activation of PI3K/Akt/Nrf2 signaling pathway - An in vitro and in vivo approach

机译:来自食用海藻藻藻氏菌菌的硫酸化多糖通过PI3K / AKT / NRF2信号传导途径的激活而衰减异丙酚诱导的氧化损伤 - 体外和体内方法

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摘要

The reactive oxygen species (ROS) induced oxidative stress is an inevitable factor for the pathogenesis of cardiovascular diseases. The edible marine algae-derived sulfated polysaccharides gained special attention as novel bioactive compounds having potential pharmacological activities. The present study evaluated in vitro and in vivo cardioprotective properties of sulfated polysaccharides from the edible brown marine algae Padina tetrastromatica (PSPS) against isoproterenol (ISO) induced cardiac damage. The cardioprotective properties of PSPS were first evaluated in H9c2 cardiac myoblasts and the results were confirmed by in vivo studies conducted in male Sprague-Dawley rats. The biochemical parameters, histopathological analysis, mRNA expressions, and ELISA studies indicated that PSPS significantly decreased (p < 0.05) the cardiac damage induced by ISO by reducing lipid peroxidation and improving antioxidant status, both in vitro and in vivo, via modulating PI3k/Akt/ Nrf2 signaling pathway. The histopathological evidence further reinforced our findings and highlighted the promising cardioprotective activities offered by PSPS.
机译:反应性氧物质(ROS)诱导的氧化应激是心血管疾病发病机制的必然因素。可食用的海藻藻类衍生的硫酸化多糖作为具有潜在药理活性的新型生物活性化合物。本研究在体外评价来自食用棕色海藻藻氏菌(PSP)的硫酸化多糖的体内心脏保护性能,对抗异丙肾上腺素(ISO)诱导的心脏损伤。首先在H9C2心脏骨卵细胞中评价PSP的心脏保护性能,结果通过在雄性Sprague-Dawley大鼠中进行的体内研究证实。生物化学参数,组织病理学分析,mRNA表达和ELISA研究表明,通过在体外和体内改善脂质过氧化和改善抗氧化状态,通过调节PI3K / AKT,PSP通过减少脂质过氧化和改善抗氧化剂状态,PSP显着降低(P <0.05)iso诱导的心脏损伤/ NRF2信号通路。组织病理学证据进一步加强了我们的调查结果,并强调了PSP提供的有前途的心脏保护活动。

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