The Second Department of Cardiology, The Third Hospital of Nanchang, Nanchang 330009, China.
Department of Cardiovascular Surgery, Xijing Hospital, the Air Force Military Medical University, Xi'an 710032, China.
Biochim Biophys Acta Mol Basis Dis. 2022 Jul 1;1868(7):166402. doi: 10.1016/j.bbadis.2022.166402. Epub 2022 Mar 26.
Advanced aging exhibits altered cardiac geometry and function involving mitochondrial anomaly. Natural compounds display promises in the regulation of cardiac homeostasis via governance of mitochondrial integrity in aging. This study examined the effect of oleanolic acid (OA), a natural pentacyclic triterpenoid with free radical scavenging and P450 cyclooxygenase-regulating properties, on cardiac aging and mechanisms involved with a focus on mitophagy. Young (4-5 month-old) and old (22-24 month-old) mice were treated with OA for 6 weeks prior to assessment of cardiac function, morphology, ultrastructure, mitochondrial integrity, cell death and autophagy. Our data revealed that OA treatment alleviated aging-induced changes in myocardial remodeling (increased heart weight, chamber size, cardiomyocyte area and interstitial fibrosis), contractile function and intracellular Ca handling, apoptosis, necroptosis, inflammation, autophagy and mitophagy (LC3B, p62, TOM20 and FUNDC1 but not BNIP3 and Parkin). OA treatment rescued aging-induced anomalies in mitochondrial ultrastructure (loss of myofilament alignment, swollen mitochondria, increased circularity), mitochondrial biogenesis and O production without any notable effect at young age. Interestingly, OA-offered benefit against cardiomyocyte aging was nullified by deletion of the mitophagy receptor FUNDC1 using FUNDC1 knockout mice, denoting an obligatory role for FUNDC1 in OA-elicited preservation of mitophagy. OA reconciled aging-induced changes in E3 ligase MARCH5 but not FBXL2, and failed to affect aging-induced rises in IP3R3. Taken together, our data indicated a beneficial role for OA in attenuating cardiac remodeling and contractile dysfunction in aging through a FUNDC1-mediated mechanism.
衰老表现为涉及线粒体异常的心脏几何和功能改变。天然化合物通过调节衰老中线粒体的完整性,在心脏稳态的调控方面显示出前景。本研究检查了oleanolic 酸(OA)对心脏衰老的影响及其机制,OA 是一种具有自由基清除和 P450 环氧化酶调节特性的天然五环三萜,重点关注自噬。在评估心脏功能、形态、超微结构、线粒体完整性、细胞死亡和自噬之前,用 OA 对年轻(4-5 个月大)和老年(22-24 个月大)小鼠进行 6 周处理。我们的数据表明,OA 处理缓解了衰老引起的心肌重构变化(增加心脏重量、腔室大小、心肌细胞面积和间质纤维化)、收缩功能和细胞内 Ca 处理、细胞凋亡、坏死性凋亡、炎症、自噬和自噬(LC3B、p62、TOM20 和 FUNDC1,但不是 BNIP3 和 Parkin)。OA 处理挽救了衰老引起的线粒体超微结构异常(肌原纤维排列紊乱、线粒体肿胀、圆度增加)、线粒体生物发生和 O 产生,而在年轻时期没有任何明显的作用。有趣的是,使用 FUNDC1 敲除小鼠(敲除 FUNDC1 以消除自噬受体 FUNDC1)消除了 OA 对心肌细胞衰老的益处,这表明 FUNDC1 在 OA 引发的自噬保存中具有强制性作用。OA 协调衰老诱导的 E3 连接酶 MARCH5 的变化,但不影响衰老诱导的 IP3R3 增加。总之,我们的数据表明,OA 通过 FUNDC1 介导的机制,在减轻衰老引起的心脏重构和收缩功能障碍方面发挥有益作用。