Comparative analysis of the effect of hypoxia in two different tumor cell models shows the differential involvement of PTEN control of proangiogenic pathways.

IF 2.4 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biochemistry and Cell Biology Pub Date : 2024-02-01 Epub Date: 2023-07-17 DOI:10.1139/bcb-2023-0047
Aleksandra Majewska, Klaudia Brodaczewska, Aleksandra Filipiak-Duliban, Claudine Kieda
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引用次数: 0

Abstract

Hypoxia, low, non-physiological oxygen tension is a key regulator of tumor microenvironment, determining the pathological tumor vascularization. Alleviation of hypoxia through vessel normalization may be a promising therapeutic approach. We aimed to assess the role of low oxygen tension in PTEN-related pathways and proangiogenic response, in vitro, in two different tumor cell lines, focusing on potential therapeutic targets for tumor vessel normalization. Downregulation of PTEN in hypoxia mediates the activation of distinct mechanisms: cytoplasmic pAKT activation in melanoma and pMDM2 modulation in kidney cancer. We show that hypoxia-induced proangiogenic potential was stronger in Renca cells than B16 F10-confirmed by a distinct secretory potential and different ability to affect endothelial cells functions. Therefore, the impact of hypoxia on PTEN-mediated regulation may determine the therapeutic targets and effectiveness of vessel normalization and intrinsic characteristics of cancer cell have to be taken into account when designing treatment.

对两种不同肿瘤细胞模型中低氧效应的比较分析表明,PTEN 对促血管生成途径的控制有不同程度的参与。
缺氧(非生理性的低氧张力)是肿瘤微环境的一个关键调节因子,决定了肿瘤血管的病理状态。通过血管正常化缓解缺氧可能是一种有前景的治疗方法。我们的目的是在两种不同的肿瘤细胞系中,在体外评估低氧张力在 PTEN 相关通路和促血管生成反应中的作用,重点关注肿瘤血管正常化的潜在治疗靶点。缺氧时 PTEN 的下调介导了不同机制的激活:黑色素瘤中的细胞质 pAKT 激活和肾癌中的 pMDM2 调节。我们的研究表明,缺氧诱导的促血管生成潜能在 Renca 细胞中比在 B16 F10 中更强,这一点通过不同的分泌潜能和影响内皮细胞功能的不同能力得到了证实。因此,缺氧对PTEN介导的调控的影响可能决定血管正常化的治疗目标和效果,在设计治疗方案时必须考虑到癌细胞的内在特征。
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
Biochemistry and Cell Biology
Biochemistry and Cell Biology 生物-生化与分子生物学
CiteScore
6.30
自引率
0.00%
发文量
50
审稿时长
6-12 weeks
期刊介绍: Published since 1929, Biochemistry and Cell Biology explores every aspect of general biochemistry and includes up-to-date coverage of experimental research into cellular and molecular biology in eukaryotes, as well as review articles on topics of current interest and notes contributed by recognized international experts. Special issues each year are dedicated to expanding new areas of research in biochemistry and cell biology.
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