高糖处理通过foxo1a-klf2a途径诱导微血管内皮细胞核聚集。

IF 7.4 1区 医学 Q1 HEMATOLOGY
Xiaoning Wang, Xinyi Kang, Bowen Li, Changsheng Chen, Liping Chen, Dong Liu
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引用次数: 0

摘要

背景:高血糖是导致内皮功能障碍和血管损伤的主要因素,可导致严重的糖尿病微血管并发症。尽管对内皮细胞(EC)功能障碍的潜在机制的研究越来越多,但基于现有知识的可用药物无法有效缓解这些并发症。因此,我们努力探索内皮功能障碍的细胞和分子机制的新见解对该领域至关重要。方法:在本研究中,我们对高糖处理下Tg(kdrl:ras-mCherry::fli1a:nGFP)斑马鱼胚胎中ECs的行为进行了高分辨率成像和延时成像分析。利用遗传操作和化学生物学方法,分析了高糖诱导斑马鱼和人工培养的斑马鱼内皮细胞细胞核聚集和异常迁移的潜在机制。利用单细胞rna测序数据和分子生物学技术进行生物信息学分析,鉴定foxo1a的靶基因。结果:在本研究中,我们观察到高糖处理导致斑马鱼节间血管内皮细胞的核聚集。此外,在高糖处理的胚胎中发现微血管内皮细胞的异常迁移,这可能是细胞核聚集的原因。高糖诱导斑马鱼胚胎foxo1a下调血管内皮细胞核聚集。然后,我们发现高糖导致foxo1a表达下调,其直接下游效应物klf2a表达增加,从而引起血管内皮核的异常迁移和聚集。结论:高糖处理在体内引起内皮细胞核聚集,类似于微动脉瘤内皮细胞核聚集。高糖抑制foxo1a的表达,增加其下游效应物klf2a的表达,从而引起血管内皮细胞核的异常迁移和聚集。我们的发现为高血糖微血管并发症的机制提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High Glucose Treatment Induces Nuclei Aggregation of Microvascular Endothelial Cells via the foxo1a-klf2a Pathway.

Background: Hyperglycemia is a major contributor to endothelial dysfunction and blood vessel damage, leading to severe diabetic microvascular complications. Despite the growing body of research on the underlying mechanisms of endothelial cell (EC) dysfunction, the available drugs based on current knowledge fall short of effectively alleviating these complications. Therefore, our endeavor to explore novel insights into the cellular and molecular mechanisms of endothelial dysfunction is crucial for the field.

Methods: In this study, we performed a high-resolution imaging and time-lapse imaging analysis of the behavior of ECs in Tg(kdrl:ras-mCherry::fli1a:nGFP) zebrafish embryos upon high glucose treatment. Genetic manipulation and chemical biology approaches were utilized to analyze the underlying mechanism of high glucose-induced nuclei aggregation and aberrant migration of zebrafish ECs and cultured human ECs. Bioinformatical analysis of single-cell RNA-sequencing data and molecular biological techniques was performed to identify the target genes of foxo1a.

Results: In this study, we observed that the high glucose treatment resulted in nuclei aggregation of ECs in zebrafish intersegmental vessels. Additionally, the aberrant migration of microvascular ECs in high glucose-treated embryos, which might be a cause of nuclei aggregation, was discovered. High glucose induced aggregation of vascular endothelial nuclei via foxo1a downregulation in zebrafish embryos. Then, we revealed that high glucose resulted in the downregulation of foxo1a expression and increased the expression of its direct downstream effector, klf2a, through which the aberrant migration and aggregation of vascular endothelial nuclei were caused.

Conclusions: High glucose treatment caused the nuclei of ECs to aggregate in vivo, which resembles the crowded nuclei of ECs in microaneurysms. High glucose suppresses foxo1a expression and increases the expression of its downstream effector, klf2a, thereby causing the aberrant migration and aggregation of vascular endothelial nuclei. Our findings provide a novel insight into the mechanism of microvascular complications in hyperglycemia.

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来源期刊
CiteScore
15.60
自引率
2.30%
发文量
337
审稿时长
2-4 weeks
期刊介绍: The journal "Arteriosclerosis, Thrombosis, and Vascular Biology" (ATVB) is a scientific publication that focuses on the fields of vascular biology, atherosclerosis, and thrombosis. It is a peer-reviewed journal that publishes original research articles, reviews, and other scholarly content related to these areas. The journal is published by the American Heart Association (AHA) and the American Stroke Association (ASA). The journal was published bi-monthly until January 1992, after which it transitioned to a monthly publication schedule. The journal is aimed at a professional audience, including academic cardiologists, vascular biologists, physiologists, pharmacologists and hematologists.
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