揭示 LDHA 和 VEGFA 在氧化应激中的作用:脑动脉瘤治疗干预的途径。

0 MEDICINE, RESEARCH & EXPERIMENTAL
Jiaying Wu, Lixia Lu, Beibei Dai, Aiyong Yu
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引用次数: 0

摘要

脑动脉瘤(CA)是一种危重疾病,通常与血管内皮细胞(VEC)的氧化应激有关。乳酸脱氢酶 A(LDHA)在糖酵解和乳酸代谢中起着关键作用,而糖酵解和乳酸代谢过程与动脉瘤的发病机制有关。了解这些分子机制有助于开发新的治疗靶点。本研究调查了氧化应激过程中乳酸代谢和乳酸相关基因,尤其是 LDHA 和血管内皮生长因子 A(VEGFA)基因在血管内皮细胞中的作用。利用 GSE26969 数据集,我们确定了乳酸相关基因的差异表达,并进行了功能富集分析,发现它们与糖酵解和乳酸代谢通路有显著关联。为了诱导氧化应激,用 H2O2 处理血管外皮生长因子,并用实时聚合酶链反应(qRT-PCR)和免疫印迹(WB)分析 LDHA 和 VEGFA 的表达。在氧-葡萄糖剥夺/再灌注(OGD/R)条件下,评估了过表达 LDHA 和敲除 VEGFA 对细胞活力和凋亡的影响。免疫沉淀结合免疫印迹技术检测了LDHA在OGD/R刺激和乳酸(LA)及2-脱氧葡萄糖(2-DG)处理后的乳酸化状态。我们的研究结果表明,氧化应激会调节 LDHA 的表达、葡萄糖摄取和乳酸生成,这表明新陈代谢转向了糖酵解。过表达 LDHA 可提高细胞存活率并减少细胞凋亡,而敲除 VEGFA 则效果相反。此外,2-DG 处理可减少 LDHA 乳化和细胞凋亡。我们的研究结果表明,LDHA 在 VECs 的氧化应激反应中起着关键作用,这凸显了靶向糖酵解在 CA 中的潜在治疗价值。这项研究有助于人们了解血管病变中的代谢适应性,并提出了治疗干预 CA 的新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling the role of LDHA and VEGFA in oxidative stress: A pathway to therapeutic interventions in cerebral aneurysms.

Cerebral aneurysms (CA) are critical conditions often associated with oxidative stress in vascular endothelial cells (VECs). The enzyme lactate dehydrogenase A (LDHA) plays a crucial role in glycolysis and lactate metabolism, processes implicated in the pathogenesis of aneurysms. Understanding these molecular mechanisms can inform the development of novel therapeutic targets. This study investigated the role of lactate metabolism and lactate-related genes, particularly LDHA and vascular endothelial growth factor A (VEGFA) genes, in VECs during oxidative stress. Using the GSE26969 dataset, we identified differential expression of lactate-related genes and performed functional enrichment analysis, revealing significant associations with glycolysis and lactate metabolic pathways. To induce oxidative stress, VECs were treated with H2O2, and the expression of LDHA and VEGFA was analyzed using quantitative real-time polymerase chain reaction (qRT-PCR) and western blotting (WB) assays. Under oxygen-glucose deprivation/reperfusion (OGD/R) conditions, the effects of LDHA overexpression and VEGFA knockdown on cell viability and apoptosis were evaluated. Immunoprecipitation combined with western blotting was used to detect the lactylation status of LDHA following OGD/R stimulation and treatment with lactic acid (LA) and 2-deoxyglucose (2-DG). Our results indicated that oxidative stress modulates LDHA expression, glucose uptake, and lactate production, suggesting a metabolic shift towards glycolysis. LDHA overexpression improved cell survival and reduced apoptosis, while VEGFA knockdown had the opposite effect. Additionally, 2-DG treatment reduced LDHA lactylation and apoptosis. Our findings demonstrated that LDHA plays a critical role in the oxidative stress response of VECs, highlighting the potential therapeutic value of targeting glycolysis in CA. This study contributes to the understanding of metabolic adaptations in vascular pathologies and suggests new avenues for therapeutic intervention in CA management.

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