Radiation Medicine Branch, National Cancer Center, Goyang, Korea.
Hepatology. 2011 May;53(5):1676-84. doi: 10.1002/hep.24128.
Transforming growth factor beta (TGF-β) is an important regulator of cell growth, and loss of TGF-β signaling is a hallmark of carcinogenesis. The Smad3/4 adaptor protein β2-spectrin (β2SP) is emerging as a potent regulator of tumorigenesis through its ability to modulate the tumor suppressor function of TGF-β. However, to date the role of the TGF-β signaling pathway at specific stages of the development of hepatocellular carcinoma (HCC), particularly in relation to the activation of other oncogenic pathways, remains poorly delineated. Here we identify a mechanism by which β2SP, a crucial Smad3 adaptor, modulates cyclin dependent kinase 4 (CDK4), cell cycle progression, and suppression of HCC. Increased expression of β2SP inhibits phosphorylation of the retinoblastoma gene product (Rb) and markedly reduces CDK4 expression to a far greater extent than other CDKs and cyclins. Furthermore, suppression of CDK4 by β2SP efficiently restores Rb hypophosphorylation and cell cycle arrest in G(1) . We further demonstrate that β2SP interacts with CDK4 and Smad3 in a competitive and TGF-β-dependent manner. In addition, haploinsufficiency of cdk4 in β2sp(+/-) mice results in a dramatic decline in HCC formation compared to that observed in β2sp(+/-) mice.
β2SP deficiency leads to CDK4 activation and contributes to dysregulation of the cell cycle, cellular proliferation, oncogene overexpression, and the formation of HCCs. Our data highlight CDK4 as an attractive target for the pharmacologic inhibition of HCC and demonstrate the importance of β2sp(+/-) mice as a model of preclinical efficacy in the treatment of HCC.
转化生长因子β(TGF-β)是细胞生长的重要调节剂,而 TGF-β信号的丧失是癌变的标志。Smad3/4 衔接蛋白β2- spectrin(β2SP)通过调节 TGF-β的肿瘤抑制功能,成为一种强有力的肿瘤发生调节剂。然而,迄今为止,TGF-β信号通路在肝细胞癌(HCC)发展的特定阶段的作用,特别是与其他致癌途径的激活有关,仍未得到充分描绘。在这里,我们确定了一种机制,即β2SP,一种关键的 Smad3 衔接蛋白,调节细胞周期蛋白依赖性激酶 4(CDK4)、细胞周期进程和 HCC 的抑制。β2SP 的表达增加抑制视网膜母细胞瘤基因产物(Rb)的磷酸化,并显著降低 CDK4 的表达,其程度远超过其他 CDK 和细胞周期蛋白。此外,β2SP 对 CDK4 的抑制有效地恢复了 Rb 的低磷酸化和 G1 期的细胞周期阻滞。我们进一步证明,β2SP 以 TGF-β依赖性和竞争性的方式与 CDK4 和 Smad3 相互作用。此外,β2sp(+/-) 小鼠中 cdk4 的单倍不足导致 HCC 形成的急剧下降,与在 β2sp(+/-) 小鼠中观察到的相比。
β2SP 缺乏导致 CDK4 的激活,并导致细胞周期失调、细胞增殖、癌基因过表达和 HCC 的形成。我们的数据突出了 CDK4 作为 HCC 药理抑制的有吸引力的靶标,并证明了β2sp(+/-) 小鼠作为 HCC 治疗的临床前疗效模型的重要性。