Increased Smad3 and reduced Smad2 levels mediate the functional switch of TGF-β from growth suppressor to growth and metastasis promoter through TMEPAI/PMEPA1 in triple negative breast cancer.

Q2 Biochemistry, Genetics and Molecular Biology
Prajjal K Singha, Srilakshmi Pandeswara, Hui Geng, Rongpei Lan, Manjeri A Venkatachalam, Albert Dobi, Shiv Srivastava, Pothana Saikumar
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引用次数: 22

Abstract

Screening of several TNBC cell lines showed altered Smad2 and Smad3 protein levels compared to normal mammary epithelial cells, suggesting the possibility that it could play an important role in the escape of cancer cells from TGF-β mediated growth inhibition. To assess the functional relevance of these endogenous molecules, Smad2 or Smad3 expression was knocked down individually and assessed their effects on pro-oncogenic properties of TGF-β. Smad3 deficiency reduced growth and invasion capacity of breast cancer cells in comparison to Smad2 which had no effect. Smad3 deficiency was also found to be associated with a reduction in the expressions of TMEPAI/PMEPA1 and EMT inducing transcription factors, E-Cadherin and increased expression of cell cycle inhibitors and Vimentin. On the other hand, Smad2 deficiency had opposite effect on these regulators. Interestingly, the decreased growth, invasion and associated gene expressions were largely reversed by overexpressing TMEPAI in Smad3 knockdown cells, suggesting that Smad3-TMEPAI axis may be involved in subverting growth suppressive effects of TGF-β into growth promotion. Similarly, altered levels of Smad proteins and TMEPAI were also noted in primary TNBC tumor tissues. Analysis of the existing databases provided additional support in terms of TMEPAI and Smad2 expression impacting the survival of TNBC patients. Taken together, our data demonstrate a novel role for Smad3 in cancer transformation and cancer progression through TMEPAI and further suggest that selective targeting of TGF-β-Smad3-TMEPAI axis may be beneficial in triple negative breast cancer therapy and prevention.

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在三阴性乳腺癌中,Smad3水平升高和Smad2水平降低介导TGF-β通过TMEPAI/PMEPA1从生长抑制因子向生长和转移促进因子的功能转换。
对几种TNBC细胞系的筛选显示,与正常乳腺上皮细胞相比,Smad2和Smad3蛋白水平发生了改变,这表明Smad3可能在癌细胞逃避TGF-β介导的生长抑制中发挥了重要作用。为了评估这些内源性分子的功能相关性,我们分别下调Smad2或Smad3的表达,并评估它们对TGF-β促癌特性的影响。与没有影响的Smad2相比,Smad3缺乏降低了乳腺癌细胞的生长和侵袭能力。Smad3缺陷还被发现与TMEPAI/PMEPA1和EMT诱导转录因子E-Cadherin的表达减少以及细胞周期抑制剂和Vimentin的表达增加有关。另一方面,Smad2缺乏对这些调节因子有相反的影响。有趣的是,在Smad3敲除细胞中,TMEPAI的过表达在很大程度上逆转了生长、侵袭和相关基因表达的下降,这表明Smad3-TMEPAI轴可能参与了将TGF-β的生长抑制作用颠覆为促进生长的过程。同样,在原发性TNBC肿瘤组织中也发现了Smad蛋白和TMEPAI水平的改变。对现有数据库的分析提供了关于TMEPAI和Smad2表达影响TNBC患者生存的额外支持。综上所述,我们的数据证明了Smad3通过TMEPAI在癌症转化和癌症进展中的新作用,并进一步表明选择性靶向TGF-β-Smad3-TMEPAI轴可能有助于三阴性乳腺癌的治疗和预防。
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
Genes and Cancer
Genes and Cancer Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.90
自引率
0.00%
发文量
6
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