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首页> 外文期刊>Arteriosclerosis, thrombosis, and vascular biology >Atheroprotective Flow Upregulates ITPR3 (Inositol 1,4,5-Trisphosphate Receptor 3) in Vascular Endothelium via KLF4 (Kruppel-Like Factor 4)-Mediated Histone Modifications
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Atheroprotective Flow Upregulates ITPR3 (Inositol 1,4,5-Trisphosphate Receptor 3) in Vascular Endothelium via KLF4 (Kruppel-Like Factor 4)-Mediated Histone Modifications

机译:通过KLF4(Kruppel样因子4)介导的组蛋白修饰,在血管内皮中升高胃肠杆菌(肌醇1,4,5-三立磷酸受体3)介导的组蛋白修饰

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Objective-The topographical distribution of atherosclerosis in vasculature underscores the importance of shear stress inregulating endothelium. With a systems approach integrating sequencing data, the current study aims to explore the link between shear stress-regulated master transcription factor and its regulation of endothelial cell (EC) function via epigenetic modifications. Approach and Results-H3K27ac (acetylation of histone 3 lysine 27)-ChIP-seq (chromatin immunoprecipitation followed by high throughput sequencing), ATAC-seq (an assay for transposase-accessible chromatin-sequencing), and RNAseq (RNA-sequencing) were performed to investigate the genome-wide epigenetic regulations in ECs in response to atheroprotective pulsatile shear stress (PS). In silico prediction revealed that KLF4 binding motifs were enriched in the PS-enhanced H3K27ac regions. By integrating PS-and KLF4-modulated H3K27ac, we identified 18 novel PS-upregulated genes. The promoter regions of these genes showed an overlap between the KLF4-enhanced assay for transposase-accessible chromatin signals and the PS-induced H3K27ac peaks. Experiments using ECs isolated from mouse aorta, lung ECs from EC-KLF4-TG versus EC-KLF4-KO mice, and atorvastatin-treated ECs showed that ITPR3 (inositol 1,4,5-trisphosphate receptor 3) was robustly activated by KLF4 and statins. KLF4 ATAC-qPCR (quantitative polymerase chain reaction) and ChIP-qPCR further demonstrated that a specific locus in the promoter region of the ITPR3 gene was essential for KLF4 binding, H3K27ac enrichment, chromatin accessibility, RNA polymerase II recruitment, and ITPR3 transcriptional activation. Deletion of this KLF4 binding locus in ECs by using CRISPR-Cas9 resulted in blunted calcium influx, reduced expression of endothelial nitric oxide synthase, and diminished nitric oxide bioavailability. Conclusions-These results from a novel multiomics study suggest that KLF4 is crucial for PS-modulated H3K27ac that allow the transcriptional activation of ITPR3. This novel mechanism contributes to the Ca2+-dependent eNOS (endothelial nitric oxide synthase) activation and EC homeostasis.
机译:目的 - 脉管系统中动脉粥样硬化的地形分布强调了剪切应力造成内皮的重要性。利用积分测序数据的系统方法,目前的研究旨在通过表观遗传修饰探讨剪切应激调节母转录因子及其对内皮细胞(EC)功能的调节之间的链路。方法和结果-H3K27AC(组蛋白3赖氨酸的乙酰化)-chip-Seq(染色质免疫沉淀,然后是高通量测序),ATAC-SEQ(用于转座酶可接近的染色质染色质染色质谱的测定)和RNA匹Q(RNA测序)在反应动脉保护脉冲剪切应力(PS)响应于ECS中的基因组介质表观遗传法规进行。在硅预测中,鉴于KLF4结合基序在PS增强的H3K27AC区域中富集。通过整合PS-和KLF4调制的H3K27AC,我们确定了18个新的PS-Upregulated基因。这些基因的启动子区域在KLF4增强的测定中显示出转座酶可接近的染色质信号和PS诱导的H3K27AC峰之间的重叠。使用EC-KLF4-TG与EC-KLF4-KO小鼠的肺ECS分离的ECS分离的ECS,以及阿托伐他汀处理的ECS显示ITPR3(肌醇1,4,5-三磷酸受体3)通过KLF4和他汀类药物。 KLF4 ATAC-QPCR(定量聚合酶链反应)和芯片QPCR进一步证明了ITPR3基因的启动子区中的特定基因座对于KLF4结合,H3K27AC富集,染色质可接受性,RNA聚合酶II募集和ITPR3转录活化是必需的。通过使用CRISPR-CAS9删除ECS中的这种KLF4结合基因座导致钙流入钝化,减少内皮一氧化氮合酶的表达,并减少一氧化氮生物利用度。结论 - 新型多组合研究的这些结果表明,KLF4对于PS调制H3K27AC至关重要,允许ITPR3的转录激活。这种新机制有助于Ca2 +依赖性eNOS(内皮一氧化氮合酶)活化和ec稳态。

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