ORP7在原代内皮细胞中的功能组学研究。

IF 4.4 1区 生物学 Q1 BIOLOGY BMC Biology Pub Date : 2024-12-18 DOI:10.1186/s12915-024-02087-6
Juuso H Taskinen, Minna Holopainen, Hanna Ruhanen, Miesje van der Stoel, Reijo Käkelä, Elina Ikonen, Salla Keskitalo, Markku Varjosalo, Vesa M Olkkonen
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引用次数: 0

摘要

背景:在过去的几十年里,许多氧甾醇结合蛋白相关蛋白(ORP)家族的成员已经被详细描述,但ORP7的脂质转运和其他功能仍然是未知的。已知的ORP7指向内质网和质膜定位蛋白,它也与GABA型A受体相关蛋白如2 (GABARAPL2)和未脂化的微管相关蛋白1A/1B轻链3B (LC3B)相互作用,表明其与自噬体/溶酶体有进一步的关联。ORP7在胆固醇外排、高胆固醇血症和巨噬中发挥功能作用。我们利用转录组学和脂质组学以及邻近生物素化相互作用组学对ORP7的化学抑制进行了无假设的多组学分析,以表征ORP7在原代细胞类型人脐静脉内皮细胞(HUVECs)中的功能。此外,还进行了血管生成、胆固醇外排和脂滴定量测定。结果:药物抑制ORP7导致脂质代谢和炎症相关基因表达增加,而细胞周期和细胞分裂相关基因表达下调。脂质组学分析显示神经酰胺和溶血磷脂酰胆碱以及饱和和单不饱和三酰甘油增加。所有胆固醇酯和一些不饱和三酰甘油种类均显著减少,与检测到的平均脂滴面积减少相一致。随着脂质储存的减少,atp结合盒亚家族G成员1 (ABCG1)介导的胆固醇外排和血管生成减少。相互作用组学揭示了ORP7与中枢代谢调节因子AKT1的相互作用。结论:转录组学结果表明,前列腺素和氧甾醇合成增加,这可能与观察到的促炎基因上调有关。我们设想,ORP7抑制的HUVECs血管生成缺陷可能是不利的质膜脂组成和/或细胞分裂潜力降低的结果。综上所述,本研究表明ORP7在原代内皮细胞的脂质稳态、血管生成管形成、脂质代谢、炎症和细胞周期的基因表达等方面具有多方面的功能。
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Functional omics of ORP7 in primary endothelial cells.

Background: Many members of the oxysterol-binding protein-related protein (ORP) family have been characterized in detail over the past decades, but the lipid transport and other functions of ORP7 still remain elusive. What is known about ORP7 points toward an endoplasmic reticulum and plasma membrane-localized protein, which also interacts with GABA type A receptor-associated protein like 2 (GABARAPL2) and unlipidated Microtubule-associated proteins 1A/1B light chain 3B (LC3B), suggesting a further autophagosomal/lysosomal association. Functional roles of ORP7 have been suggested in cholesterol efflux, hypercholesterolemia, and macroautophagy. We performed a hypothesis-free multi-omics analysis of chemical ORP7 inhibition utilizing transcriptomics and lipidomics as well as proximity biotinylation interactomics to characterize ORP7 functions in a primary cell type, human umbilical vein endothelial cells (HUVECs). Moreover, assays on angiogenesis, cholesterol efflux, and lipid droplet quantification were conducted.

Results: Pharmacological inhibition of ORP7 leads to an increase in gene expression related to lipid metabolism and inflammation, while genes associated with cell cycle and cell division were downregulated. Lipidomic analysis revealed increases in ceramides and lysophosphatidylcholines as well as saturated and monounsaturated triacylglycerols. Significant decreases were seen in all cholesteryl ester and in some unsaturated triacylglycerol species, compatible with the detected decrease of mean lipid droplet area. Along with the reduced lipid stores, ATP-binding cassette subfamily G member 1 (ABCG1)-mediated cholesterol efflux and angiogenesis decreased. Interactomics revealed an interaction of ORP7 with AKT1, a central metabolic regulator.

Conclusions: The transcriptomics results suggest an increase in prostanoid as well as oxysterol synthesis, which could be related to the observed upregulation of proinflammatory genes. We envision that the defective angiogenesis in HUVECs subjected to ORP7 inhibition could be the result of an unfavorable plasma membrane lipid composition and/or reduced potential for cell division. To conclude, the present study suggests multifaceted functions of ORP7 in lipid homeostasis, angiogenic tube formation, and gene expression of lipid metabolism, inflammation, and cell cycle in primary endothelial cells.

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来源期刊
BMC Biology
BMC Biology 生物-生物学
CiteScore
7.80
自引率
1.90%
发文量
260
审稿时长
3 months
期刊介绍: BMC Biology is a broad scope journal covering all areas of biology. Our content includes research articles, new methods and tools. BMC Biology also publishes reviews, Q&A, and commentaries.
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