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IKB 激酶复合物(IKK)独立于 PI3K-AKT-MTORC1 通路触发乳腺上皮细胞的牵拉诱导自噬。

IκB kinase complex (IKK) triggers detachment-induced autophagy in mammary epithelial cells independently of the PI3K-AKT-MTORC1 pathway.

机构信息

Department of Pathology and Helen Diller Family Comprehensive Cancer Center; University of California, San Francisco; San Francisco, CA USA.

出版信息

Autophagy. 2013 Aug;9(8):1214-27. doi: 10.4161/auto.24870. Epub 2013 May 8.

Abstract

Adherent cells require proper integrin-mediated extracellular matrix (ECM) engagement for growth and survival; normal cells deprived of proper ECM contact undergo anoikis. At the same time, autophagy is induced as a survival pathway in both fibroblasts and epithelial cells upon ECM detachment. Here, we further define the intracellular signals that mediate detachment-induced autophagy and uncover an important role for the IκB kinase (IKK) complex in the induction of autophagy in mammary epithelial cells (MECs) deprived of ECM contact. Whereas the PI3K-AKT-MTORC1 pathway activation potently inhibits autophagy in ECM-detached fibroblasts, enforced activation of this pathway is not sufficient to suppress detachment-induced autophagy in MECs. Instead, inhibition of IKK, as well as its upstream regulator, MAP3K7/TAK1, significantly attenuates detachment-induced autophagy in MECs. Furthermore, function-blocking experiments corroborate that both IKK activation and autophagy induction result from decreased ITGA3-ITGB1 (α3β1 integrin) function. Finally, we demonstrate that pharmacological IKK inhibition enhances anoikis and accelerates luminal apoptosis during acinar morphogenesis in three-dimensional culture. Based on these results, we propose that the IKK complex functions as a key mediator of detachment-induced autophagy and anoikis resistance in epithelial cells.

摘要

黏附细胞的生长和存活需要适当的整合素介导的细胞外基质 (ECM) 接触;正常细胞如果失去与 ECM 的适当接触,就会发生凋亡。与此同时,在 ECM 脱离后,成纤维细胞和上皮细胞都会诱导自噬作为一种存活途径。在这里,我们进一步定义了介导细胞脱离诱导自噬的细胞内信号,并揭示了 IκB 激酶 (IKK) 复合物在诱导失去 ECM 接触的乳腺上皮细胞 (MEC) 自噬中的重要作用。虽然 PI3K-AKT-MTORC1 通路的激活强烈抑制 ECM 分离的成纤维细胞中的自噬,但强制激活该通路不足以抑制 MEC 中细胞脱离诱导的自噬。相反,抑制 IKK 及其上游调节因子 MAP3K7/TAK1,可显著减弱 MEC 中细胞脱离诱导的自噬。此外,功能阻断实验证实,IKK 的激活和自噬的诱导都源于 ITGA3-ITGB1(α3β1 整合素)功能的降低。最后,我们证明了在三维培养中,通过药理学抑制 IKK 可增强上皮细胞的凋亡和加速腔形成过程中的腔面细胞凋亡。基于这些结果,我们提出 IKK 复合物是上皮细胞中细胞脱离诱导自噬和抗凋亡的关键介质。

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