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多种分子相互作用对RB介导的细胞周期控制起着冗余作用。

Multiple molecular interactions redundantly contribute to RB-mediated cell cycle control.

作者信息

Thwaites Michael J, Cecchini Matthew J, Talluri Srikanth, Passos Daniel T, Carnevale Jasmyne, Dick Frederick A

机构信息

London Regional Cancer Program, London, Canada.

Department of Biochemistry, Western University, London, ON Canada.

出版信息

Cell Div. 2017 Mar 14;12:3. doi: 10.1186/s13008-017-0029-6. eCollection 2017.

Abstract

BACKGROUND

The G1-S phase transition is critical to maintaining proliferative control and preventing carcinogenesis. The retinoblastoma tumor suppressor is a key regulator of this step in the cell cycle.

RESULTS

Here we use a structure-function approach to evaluate the contributions of multiple protein interaction surfaces on pRB towards cell cycle regulation. SAOS2 cell cycle arrest assays showed that disruption of three separate binding surfaces were necessary to inhibit pRB-mediated cell cycle control. Surprisingly, mutation of some interaction surfaces had no effect on their own. Rather, they only contributed to cell cycle arrest in the absence of other pRB dependent arrest functions. Specifically, our data shows that pRB-E2F interactions are competitive with pRB-CDH1 interactions, implying that interchangeable growth arrest functions underlie pRB's ability to block proliferation. Additionally, disruption of similar cell cycle control mechanisms in genetically modified mutant mice results in ectopic DNA synthesis in the liver.

CONCLUSIONS

Our work demonstrates that pRB utilizes a network of mechanisms to prevent cell cycle entry. This has important implications for the use of new CDK4/6 inhibitors that aim to activate this proliferative control network.

摘要

背景

G1-S期转换对于维持增殖控制和预防癌症发生至关重要。视网膜母细胞瘤肿瘤抑制因子是细胞周期这一步骤的关键调节因子。

结果

在此,我们采用结构-功能方法来评估pRB上多个蛋白质相互作用表面对细胞周期调控的贡献。SAOS2细胞周期阻滞试验表明,破坏三个独立的结合表面对于抑制pRB介导的细胞周期控制是必要的。令人惊讶的是,一些相互作用表面的突变本身并无影响。相反,它们仅在缺乏其他pRB依赖性阻滞功能的情况下才导致细胞周期阻滞。具体而言,我们的数据表明pRB-E2F相互作用与pRB-CDH1相互作用相互竞争,这意味着可互换的生长阻滞功能是pRB阻止增殖能力的基础。此外,基因修饰突变小鼠中类似细胞周期控制机制的破坏会导致肝脏中出现异位DNA合成。

结论

我们的工作表明pRB利用一系列机制来阻止细胞周期进入。这对于旨在激活该增殖控制网络的新型CDK4/6抑制剂的使用具有重要意义。

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