E2F7通过转录上调SPC24介导有氧糖酵解,促进乳腺癌的发生。

IF 3 4区 生物学 Q2 BIOPHYSICS
Wen Yun, Changfei Mao, Yuan Yuan
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引用次数: 0

摘要

以有氧糖酵解为特征的代谢重编程在包括乳腺癌(BC)在内的多种癌症中都被观察到,它对维持癌症的稳定性有着重要的影响。SPC24的异常表达与多种癌症的发生和发展有关,但其在BC中的作用尚不清楚。通过生物信息学分析,确定了BC中SPC24和E2F7的表达水平,以及SPC24差异表达的富集信号通路,并通过细胞实验验证。通过生物信息学分析评估E2F7与SPC24之间的转录调控关系,并通过双荧光素酶测定和染色质免疫沉淀(ChIP)完成验证。为了评估BC的干性,我们采用western blot (WB)检测CD44、CD133、Oct-4和ALDH1A1的水平,并进行细胞球形成。采用流式细胞术检测干细胞比例。为了评估BC细胞的糖酵解水平,我们通过WB检测关键蛋白LDHA、HK2和GLUT1的表达,并使用试剂盒测量细胞外酸化率和耗氧量。细胞实验结合生物信息学分析表明,E2F7和SPC24在BC中均显著上调,其中SPC24主要富集于糖酵解代谢途径。进一步实验表明,SPC24通过有氧糖酵解重编程增强细胞的干细胞性,并受转录因子E2F7的调控。E2F7通过转录激活BC中SPC24的上调,从而通过有氧糖酵解重编程促进干细胞的生长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
E2F7 transcriptionally upregulates SPC24 to mediate aerobic Glycolysis and facilitate stemness of breast cancer.

Metabolic reprogramming characterized by aerobic glycolysis is observed in various cancers, including breast cancer (BC), exerting essential influence on maintaining cancer stemness. The abnormal expression of SPC24 is linked to the occurrence and development of various cancers, but its role in BC remains unelucidated. Bioinformatics analysis was undertaken to determine the levels of SPC24 and E2F7 in BC, and the enriched signaling pathways of SPC24 with differential expression, which were validated through cell experiments. The transcriptional regulatory relationship between E2F7 and SPC24 was also assessed through bioinformatics analysis, with validation completed by dual luciferase assay and chromatin immunoprecipitation (ChIP). To evaluate BC stemness, we employed the western blot (WB) to detect the levels of CD44, CD133, Oct-4, and ALDH1A1, and conducted the cell sphere formation. Flow cytometry was used to detect the proportion of stem cells. To assess the level of glycolysis in BC cells, we detected the expression of key proteins LDHA, HK2, and GLUT1 through WB, and measured the extracellular acidification rate and oxygen consumption rate with kits. Cell experiments combining bioinformatics analysis demonstrated that both E2F7 and SPC24 were greatly upregulated in BC, with SPC24 primarily enriched in the glycolysis metabolic pathway. Further experiments manifested that SPC24 reinforced cell stemness through aerobic glycolysis reprogramming, and SPC24 was modulated by transcription factor E2F7. E2F7 transcriptionally activates the upregulation of SPC24 in BC, which boosts stemness through aerobic glycolysis reprogramming.

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来源期刊
CiteScore
6.00
自引率
0.00%
发文量
22
审稿时长
6-12 weeks
期刊介绍: The Journal of Bioenergetics and Biomembranes is an international journal devoted to the publication of original research that contributes to fundamental knowledge in the areas of bioenergetics, biomembranes, and transport, including oxidative phosphorylation, photosynthesis, muscle contraction, as well as cellular and systemic metabolism. The timely research in this international journal benefits biophysicists, membrane biologists, cell biologists, biochemists, molecular biologists, physiologists, endocrinologists, and bio-organic chemists.
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