机械压缩力增加乳腺癌和胰腺癌细胞的PI3K输出信号。

IF 3.3 2区 生物学 Q1 BIOLOGY Life Science Alliance Pub Date : 2025-01-02 Print Date: 2025-03-01 DOI:10.26508/lsa.202402854
Mickaël Di-Luoffo, Céline Schmitter, Emma C Barrere, Nicole Therville, Maria Chaouki, Romina D'Angelo, Silvia Arcucci, Benoit Thibault, Morgan Delarue, Julie Guillermet-Guibert
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引用次数: 0

摘要

癌症发展过程中会产生机械应力,包括压迫力。在实体瘤,尤其是乳腺癌和胰腺癌中,肿瘤的快速生长和环境重塑解释了其高强度的压缩力。然而,受压细胞对靶向疗法的敏感性仍鲜为人知。在乳腺癌和胰腺癌细胞中,药物性 PI3K 失活会减少细胞数量并诱导细胞凋亡。当我们在机械反应细胞中施加二维压缩力时,这些效应更加明显。压缩选择性地诱导了 PI3K 同工酶的过表达和 PI3K/AKT 通路的激活。此外,PI3K抑制和挤压的转录效应共同控制着自噬调节因子GABARAP的表达,而GABARAP的水平与挤压下PI3K抑制剂的敏感性成反比。在所有测试的细胞中,单独的压迫都会阻断自噬通量,而只有在机械无反应的压迫细胞中,基础 PI3K 活性的失活才会恢复自噬通量。这项研究为 PI3K/AKT 通路在压缩诱导的机械传导中的作用提供了直接证据。抑制PI3K可促进细胞凋亡或自噬,从而解释了PI3K在控制受压癌细胞存活方面的重要性。
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Mechanical compressive forces increase PI3K output signaling in breast and pancreatic cancer cells.

Mechanical stresses, including compression, arise during cancer progression. In solid cancer, especially breast and pancreatic cancers, the rapid tumor growth and the environment remodeling explain their high intensity of compressive forces. However, the sensitivity of compressed cells to targeted therapies remains poorly known. In breast and pancreatic cancer cells, pharmacological PI3K inactivation decreased cell number and induced apoptosis. These effects were accentuated when we applied 2D compression forces in mechanically responsive cells. Compression selectively induced the overexpression of PI3K isoforms and PI3K/AKT pathway activation. Furthermore, transcriptional effects of PI3K inhibition and compression converged to control the expression of an autophagy regulator, GABARAP, whose level was inversely associated with PI3K inhibitor sensitivity under compression. Compression alone blocked autophagy flux in all tested cells, whereas inactivation of basal PI3K activity restored autophagy flux only in mechanically non-responsive compressed cells. This study provides direct evidence for the role of the PI3K/AKT pathway in compression-induced mechanotransduction. PI3K inhibition promotes apoptosis or autophagy, explaining PI3K importance to control cancer cell survival under compression.

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来源期刊
Life Science Alliance
Life Science Alliance Agricultural and Biological Sciences-Plant Science
CiteScore
5.80
自引率
2.30%
发文量
241
审稿时长
10 weeks
期刊介绍: Life Science Alliance is a global, open-access, editorially independent, and peer-reviewed journal launched by an alliance of EMBO Press, Rockefeller University Press, and Cold Spring Harbor Laboratory Press. Life Science Alliance is committed to rapid, fair, and transparent publication of valuable research from across all areas in the life sciences.
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