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研究转录调控网络中增强反馈回路的功能意义。

Investigating the functional implications of reinforcing feedback loops in transcriptional regulatory networks.

作者信息

Li Yue, Liang Cheng, Easterbrook Steve, Luo Jiawei, Zhang Zhaolei

机构信息

Department of Computer Science, University of Toronto, Toronto, Ontario M5S 3G4, Canada.

出版信息

Mol Biosyst. 2014 Dec;10(12):3238-48. doi: 10.1039/c4mb00526k.

Abstract

Transcription factors (TFs) and microRNAs (miRNAs) can jointly regulate transcriptional networks in the form of recurrent circuits or motifs. A motif can be divided into a feedforward loop (FFL) and a feedback loop (FBL). Incoherent FFLs have been the recent focus due to their potential to dampen gene expression noise in maintaining physiological norms. However, a cell is not only able to manage noise but also able to exploit it during development or tumorigenesis to initiate radical transformation such as cell differentiation or metastasis. A plausible mechanism may involve reinforcing FBLs (rFBLs), which amplify changes to a sufficient level in order to complete the state transition. To study the behaviour of rFBLs, we developed a novel theoretical framework based on biochemical kinetics. The proposed rFBL follows a parsimonious design, involving two TFs and two miRNAs. A simulation study based on our model suggested that a system with rFBLs is robust to only a certain level of fluctuation but prone to a complete paradigm shift when the change exceeds a threshold level. To investigate the natural occurrence of rFBLs, we performed a rigorous network motif analysis using a recently available TF/miRNA regulatory network from the Encyclopedia of DNA Elements (ENCODE). Our analysis suggested that the rFBL is significantly depleted in the observed network. Nonetheless, we identified 9 rFBL instances. Among them, we found a double-rFBL involving three TFs SUZ12/BCLAF1/ZBTB33 and three miRNAs miR-9/19a/129-5p, which together serve as an intriguing toggle switch between nerve development and telomere maintenance. Additionally, we investigated the interactions implicated in the rFBLs using expression profiles of cancer patients from The Cancer Genome Atlas (TCGA). Together, we provided a novel and comprehensive view of the profound impacts of rFBLs and highlighted several TFs and miRNAs as the leverage points for potential therapeutic targets in cancers due to their eminent roles in the identified rFBLs.

摘要

转录因子(TFs)和微小RNA(miRNAs)可以以循环回路或基序的形式共同调节转录网络。一个基序可以分为前馈回路(FFL)和反馈回路(FBL)。非相干前馈回路因其在维持生理规范中抑制基因表达噪声的潜力而成为近期的研究重点。然而,细胞不仅能够控制噪声,还能够在发育或肿瘤发生过程中利用噪声来启动诸如细胞分化或转移等根本性转变。一种合理的机制可能涉及增强型反馈回路(rFBLs),它将变化放大到足够的水平以完成状态转变。为了研究rFBLs的行为,我们基于生化动力学开发了一个新的理论框架。所提出的rFBL遵循简约设计,涉及两个转录因子和两个微小RNA。基于我们模型的模拟研究表明,具有rFBLs的系统仅对一定水平的波动具有鲁棒性,但当变化超过阈值水平时容易发生完全的范式转变。为了研究rFBLs的自然存在情况,我们使用来自DNA元件百科全书(ENCODE)的最近可用的TF/miRNA调控网络进行了严格的网络基序分析。我们的分析表明,在观察到的网络中rFBL显著减少。尽管如此,我们鉴定出了9个rFBL实例。其中,我们发现了一个涉及三个转录因子SUZ12/BCLAF1/ZBTB33和三个微小RNA miR-9/19a/129-5p的双rFBL,它们共同作为神经发育和端粒维持之间有趣的切换开关。此外,我们使用来自癌症基因组图谱(TCGA)的癌症患者表达谱研究了rFBLs中涉及的相互作用。总之,我们提供了一个关于rFBLs深远影响的新颖而全面的观点,并强调了几个转录因子和微小RNA作为癌症潜在治疗靶点的杠杆点,因为它们在已鉴定的rFBLs中起着重要作用。

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