Dapagliflozin mitigates cellular stress and inflammation through PI3K/AKT pathway modulation in cardiomyocytes, aortic endothelial cells, and stem cell-derived β cells.

IF 8.5 1区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Fatmah R Alsereidi, Zenith Khashim, Hezlin Marzook, Ahmed M Al-Rawi, Tiana Salomon, Mahra K Almansoori, Moustafa M Madkour, Ahmed Mohamed Hamam, Mahmoud M Ramadan, Quinn P Peterson, Mohamed A Saleh
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引用次数: 0

Abstract

Dapagliflozin (DAPA), a sodium-glucose cotransporter 2 (SGLT2) inhibitor, is well-recognized for its therapeutic benefits in type 2 diabetes (T2D) and cardiovascular diseases. In this comprehensive in vitro study, we investigated DAPA's effects on cardiomyocytes, aortic endothelial cells (AECs), and stem cell-derived beta cells (SC-β), focusing on its impact on hypertrophy, inflammation, and cellular stress. Our results demonstrate that DAPA effectively attenuates isoproterenol (ISO)-induced hypertrophy in cardiomyocytes, reducing cell size and improving cellular structure. Mechanistically, DAPA mitigates reactive oxygen species (ROS) production and inflammation by activating the AKT pathway, which influences downstream markers of fibrosis, hypertrophy, and inflammation. Additionally, DAPA's modulation of SGLT2, the Na+/H + exchanger 1 (NHE1), and glucose transporter (GLUT 1) type 1 highlights its critical role in maintaining cellular ion balance and glucose metabolism, providing insights into its cardioprotective mechanisms. In aortic endothelial cells (AECs), DAPA exhibited notable anti-inflammatory properties by restoring AKT and phosphoinositide 3-kinase (PI3K) expression, enhancing mitogen-activated protein kinase (MAPK) activation, and downregulating inflammatory cytokines at both the gene and protein levels. Furthermore, DAPA alleviated tumor necrosis factor (TNFα)-induced inflammation and stress responses while enhancing endothelial nitric oxide synthase (eNOS) expression, suggesting its potential to preserve vascular function and improve endothelial health. Investigating SC-β cells, we found that DAPA enhances insulin functionality without altering cell identity, indicating potential benefits for diabetes management. DAPA also upregulated MAFA, PI3K, and NRF2 expression, positively influencing β-cell function and stress response. Additionally, it attenuated NLRP3 activation in inflammation and reduced NHE1 and glucose-regulated protein GRP78 expression, offering novel insights into its anti-inflammatory and stress-modulating effects. Overall, our findings elucidate the multifaceted therapeutic potential of DAPA across various cellular models, emphasizing its role in mitigating hypertrophy, inflammation, and cellular stress through the activation of the AKT pathway and other signaling cascades. These mechanisms may not only contribute to enhanced cardiac and endothelial function but also underscore DAPA's potential to address metabolic dysregulation in T2D.

达帕格列净通过调节心肌细胞、主动脉内皮细胞和干细胞衍生β细胞中的PI3K/AKT通路,减轻细胞应激和炎症反应。
达帕格列净(Dapagliflozin,DAPA)是一种钠-葡萄糖共转运体2(SGLT2)抑制剂,因其对2型糖尿病(T2D)和心血管疾病的治疗效果而广为人知。在这项全面的体外研究中,我们调查了 DAPA 对心肌细胞、主动脉内皮细胞 (AEC) 和干细胞衍生β细胞 (SC-β) 的影响,重点是其对肥大、炎症和细胞应激的影响。我们的研究结果表明,DAPA 能有效减轻异丙肾上腺素(ISO)诱导的心肌细胞肥大,缩小细胞体积,改善细胞结构。从机理上讲,DAPA 可通过激活 AKT 通路来减轻活性氧(ROS)的产生和炎症反应,从而影响纤维化、肥大和炎症反应的下游指标。此外,DAPA 对 SGLT2、Na+/H + 交换子 1(NHE1)和葡萄糖转运体(GLUT 1)1 型的调节作用突显了其在维持细胞离子平衡和葡萄糖代谢中的关键作用,为其心脏保护机制提供了深入的见解。在主动脉内皮细胞(AECs)中,DAPA 通过恢复 AKT 和磷酸肌酸 3- 激酶(PI3K)的表达、增强丝裂原活化蛋白激酶(MAPK)的活化以及在基因和蛋白水平上下调炎性细胞因子,表现出显著的抗炎特性。此外,DAPA还能减轻肿瘤坏死因子(TNFα)诱导的炎症和应激反应,同时增强内皮一氧化氮合酶(eNOS)的表达,这表明它具有保护血管功能和改善内皮健康的潜力。在研究 SC-β 细胞时,我们发现 DAPA 可增强胰岛素功能,而不会改变细胞特性,这表明它对糖尿病管理具有潜在益处。DAPA还能上调MAFA、PI3K和NRF2的表达,对β细胞的功能和应激反应产生积极影响。此外,它还减轻了炎症中 NLRP3 的激活,降低了 NHE1 和葡萄糖调节蛋白 GRP78 的表达,为其抗炎和应激调节作用提供了新的见解。总之,我们的研究结果阐明了 DAPA 在各种细胞模型中的多方面治疗潜力,强调了它通过激活 AKT 通路和其他信号级联在减轻肥大、炎症和细胞应激方面的作用。这些机制不仅有助于增强心脏和内皮功能,而且还强调了 DAPA 解决 T2D 代谢失调问题的潜力。
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来源期刊
Cardiovascular Diabetology
Cardiovascular Diabetology 医学-内分泌学与代谢
CiteScore
12.30
自引率
15.10%
发文量
240
审稿时长
1 months
期刊介绍: Cardiovascular Diabetology is a journal that welcomes manuscripts exploring various aspects of the relationship between diabetes, cardiovascular health, and the metabolic syndrome. We invite submissions related to clinical studies, genetic investigations, experimental research, pharmacological studies, epidemiological analyses, and molecular biology research in this field.
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