肝X受体激活可减轻氧固醇诱导的胎盘内皮细胞功能障碍。

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Meekha George , Hanna Helene Allerkamp , Zhanat Koshenov , Furkan E. Oflaz , Carmen Tam-Amersdorfer , Tatjana Kolesnik , Sonja Rittchen , Magdalena Lang , Eleonore Fröhlich , Wolfgang Graier , Herbert Strobl , Christian Wadsack
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引用次数: 0

摘要

维持胎盘血管的平衡对确保胎儿的正常生长和发育至关重要。任何对这种平衡的破坏都会导致围产期发病。多项研究发现,高水平的氧化胆固醇(氧化甾醇)与妊娠期并发症(包括妊娠糖尿病(GDM)和子痫前期(PE))之间存在关联。这些并发症往往与胎盘血管功能紊乱同时发生。在此,我们研究了两种羟基甾醇(7-酮胆固醇、7β-羟基胆固醇)在原发性胎盘内皮细胞(fpEC)功能(失调)中的作用。我们的研究结果表明,氧杂环醇通过增加活性氧(ROS)的产生和干扰线粒体跨膜电位,导致线粒体去极化,从而对胎儿内皮细胞的功能产生破坏性影响。此外,氧杂环丁烷醇处理的 fpEC 表现出细胞内钙(Ca2+)水平的改变,导致细胞连接重组以及膜硬度和血管通透性的相应增加。此外,我们还观察到氧杂环醇处理后 THP-1 单核细胞与 fpEC 的粘附性增强。我们探讨了用合成激动剂 T0901317(TO)激活肝 X 受体(LXR)对氧杂环醇诱导的 fpEC 内皮功能障碍的影响。我们的研究结果表明,LXR 激活可有效逆转氧杂环醇诱导的 ROS 生成、单核细胞粘附和 fpEC 细胞连接通透性。虽然对线粒体去极化和钙动员的影响未达到统计学意义,但在 LXR 激活的细胞中,钙动员明显呈稳定趋势。综上所述,我们的研究结果表明,高水平的全身性氧固醇与胎盘血管功能障碍有关,而 LXR 激动剂可减轻其对胎盘血管的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Liver X receptor activation mitigates oxysterol-induced dysfunction in fetoplacental endothelial cells

Maintaining the homeostasis of the placental vasculature is of paramount importance for ensuring normal fetal growth and development. Any disruption in this balance can lead to perinatal morbidity. Several studies have uncovered an association between high levels of oxidized cholesterol (oxysterols), and complications during pregnancy, including gestational diabetes mellitus (GDM) and preeclampsia (PE). These complications often coincide with disturbances in placental vascular function. Here, we investigate the role of two oxysterols (7-ketocholesterol, 7β-hydroxycholesterol) in (dys)function of primary fetoplacental endothelial cells (fpEC). Our findings reveal that oxysterols exert a disruptive influence on fpEC function by elevating the production of reactive oxygen species (ROS) and interfering with mitochondrial transmembrane potential, leading to its depolarization. Moreover, oxysterol-treated fpEC exhibited alterations in intracellular calcium (Ca2+) levels, resulting in the reorganization of cell junctions and a corresponding increase in membrane stiffness and vascular permeability. Additionally, we observed an enhanced adhesion of THP-1 monocytes to fpEC following oxysterol treatment. We explored the influence of activating the Liver X Receptor (LXR) with the synthetic agonist T0901317 (TO) on oxysterol-induced endothelial dysfunction in fpEC. Our results demonstrate that LXR activation effectively reversed oxysterol-induced ROS generation, monocyte adhesion, and cell junction permeability in fpEC. Although the effects on mitochondrial depolarization and calcium mobilization did not reach statistical significance, a strong trend towards stabilization of calcium mobilization was evident in LXR-activated cells. Taken together, our results suggest that high levels of systemic oxysterols link to placental vascular dysfunction and LXR agonists may alleviate their impact on fetoplacental vasculature.

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来源期刊
CiteScore
11.00
自引率
2.10%
发文量
109
审稿时长
53 days
期刊介绍: BBA Molecular and Cell Biology of Lipids publishes papers on original research dealing with novel aspects of molecular genetics related to the lipidome, the biosynthesis of lipids, the role of lipids in cells and whole organisms, the regulation of lipid metabolism and function, and lipidomics in all organisms. Manuscripts should significantly advance the understanding of the molecular mechanisms underlying biological processes in which lipids are involved. Papers detailing novel methodology must report significant biochemical, molecular, or functional insight in the area of lipids.
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