[Study on the targets and mechanisms of 7-hydroxyethyl chrysin in prevention and treatment of high-altitude cerebral edema using proteomics technology].

Q2 Medicine
Dongmei Zhang, Xiaolin Li, Chenyu Yang, Linlin Jing, Lei He, Huiping Ma
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引用次数: 0

Abstract

Objectives: To investigate the targets and mechanisms of 7-hydroxyethyl chrysin (7-HEC) in prevention and treatment of high-altitude cerebral edema (HACE) in rats.

Methods: Fifty-four male Wistar rats were randomly divided into normal control group, HACE model group, and 7-HEC-treated group (18 rats in each group). Except for the normal control group, rats in the two other groups were exposed to a hypobaric hypoxic chamber simulating a 7000 m altitude for 72 h to establish the HACE model. The 7-HEC-treated group was intraperitoneally injected with 7-HEC (150 mg·kg¹·d¹) for 3 consecutive days before modeling, while the model group received equivalent isotonic sodium chloride solution. Tandem Mass Tag (TMT) proteomics technology was used to detect differentially expressed proteins (DEPs) with screening criteria set at a fold change >1.2 and P<0.05. Western blotting was used to verify the expression levels of target proteins. Gene Ontology (GO) enrichment analysis, Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment analysis, and protein-protein interaction (PPI) network analysis were performed.

Results: Compared with the normal control group, 256 DEPs were identified in the HACE model group. Compared with the HACE model group, 87 DEPs were identified in the 7-HEC-treated group. Among them, 19 DEPs that were dysregulated in the HACE model group were restored after 7-HEC intervention, of which seven (HSPA4, Arhgap20, SERT, HACL1, CCDC43, POLR3A, and PCBD1) were confirmed by Western blotting. GO enrichment analysis of the DEPs between the HACE model and 7-HEC-treated groups revealed their involvement in 13 biological processes, five cellular components, and two molecular functions. KEGG pathway analysis indicated associations with the mRNA surveillance pathway, Th17 cell differentiation, serotonergic synapse, RNA polymerase, protein processing in the endoplasmic reticulum, peroxisome, neuroactive ligand-receptor interaction, folate biosynthesis. PPI network analysis demonstrated that HSPA4, POLR3A, and HACL1, which were validated by Western blotting, interacted with multiple signaling pathways and ranked among the top 20 hub proteins by degree value, suggesting their potential role as core regulatory factors. Arhgap20, SERT and PCBD1 also exhibited interactions with several proteins, suggesting their potential as key regulatory proteins, whereas no interactions for CCDC43 were identified.

Conclusions: This study applied TMT proteomics to identify seven potential therapeutic targets of 7-HEC for the prevention and treatment of HACE. These targets may be involved in the pathogenesis of HACE through multiple pathways, including maintaining cellular homeostasis, ameliorating oxidative stress, regulating energy metabolism, and reducing vascular permeability.

应用TMT蛋白质组学技术研究7-羟乙基菊花素防治高原脑水肿的作用靶点及机制。
目的:探讨7-羟乙基菊花素(7-HEC)防治大鼠高原脑水肿(HACE)的作用靶点及机制。方法:将54只雄性Wistar大鼠随机分为正常对照组、HACE模型组和7- hec治疗组,每组18只。除正常对照组外,其余两组大鼠均在模拟海拔7000 m的低压缺氧舱中培养72 h,建立HACE模型。7-HEC治疗组在造模前3天腹腔注射7-HEC (150 mg·kg-¹·d-¹),模型组注射等量生理盐水。采用串联质量标签(Tandem Mass Tag, TMT)蛋白质组学技术检测差异表达蛋白(differential expression proteins, DEPs),筛选标准为倍变>1.2。结果:与正常对照组比较,HACE模型组共鉴定出差异表达蛋白256个。与HACE模型组比较,7- hec治疗组共发现dep 87个。7-HEC干预后,HACE模型组出现异常的DEPs有19个得到恢复,其中7个(HSPA4、Arhgap20、SERT、HACL1、CCDC43、POLR3A、PCBD1)经Western blotting证实。对HACE模型和7- hec处理组之间的DEPs进行氧化石墨烯富集分析,发现它们参与13个生物过程、5个细胞成分和2个分子功能。KEGG通路分析表明与mRNA监视通路、血清素能突触、RNA聚合酶、内质网蛋白质加工、过氧化物酶体、神经活性配体-受体相互作用、叶酸生物合成、细胞因子-细胞因子受体相互作用以及辅因子的生物合成有关。PPI网络分析表明,经Western blotting验证的HSPA4、POLR3A和HACL1与多种信号通路相互作用,度值排名前20位。Arhgap20、SERT (Slc6a4)和PCBD1也表现出与几种蛋白的相互作用,表明它们可能是关键的调节蛋白,而CCDC43没有检测到相互作用。结论:本研究应用TMT蛋白组学技术鉴定了7-羟乙基菊花素(7-HEC)预防和治疗HACE的7个潜在治疗靶点。这些靶点可能通过维持细胞内稳态、改善氧化应激、调节能量代谢、降低血管通透性等多种途径参与HACE的预防和治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.80
自引率
0.00%
发文量
67
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