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Identifying Stress Transcription Factors Using Gene Expression and TF-Gene Association Data

机译:使用基因表达和TF基因关联数据识别胁迫转录因子

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摘要

Unicellular organisms such as yeasts have evolved to survive environmental stresses by rapidly reorganizing the genomic expression program to meet the challenges of harsh environments. The complex adaptation mechanisms to stress remain to be elucidated. In this study, we developed Stress Transcription Factor Identification Algorithm (STFIA), which integrates gene expression and TF-gene association data to identify the stress transcription factors (TFs) of six kinds of stresses. We identified some general stress TFs that are in response to various stresses, and some specific stress TFs that are in response to one specific stress. The biological significance of our findings is validated by the literature. We found that a small number of TFs may be sufficient to control a wide variety of expression patterns in yeast under different stresses. Two implications can be inferred from this observation. First, the adaptation mechanisms to different stresses may have a bow-tie structure. Second, there may exist extensive regulatory cross-talk among different stress responses. In conclusion, this study proposes a network of the regulators of stress responses and their mechanism of action.
机译:通过迅速重组基因组表达程序来应对恶劣环境的挑战,单细胞生物(例如酵母)已经进化成能够在环境压力下生存。压力的复杂适应机制仍有待阐明。在这项研究中,我们开发了应力转录因子识别算法(STFIA),该算法整合了基因表达和TF基因关联数据,以识别六种压力的应力转录因子(TF)。我们确定了一些响应各种应力的一般应力TF,以及一些响应一种特定应力的特定应力TF。我们的发现的生物学意义已被文献证实。我们发现少量的TF可能足以控制不同压力下酵母中的多种表达模式。从这一观察可以推断出两个含义。首先,对不同压力的适应机制可能具有领结结构。其次,在不同的压力反应之间可能存在广泛的调节串扰。总之,本研究提出了压力反应调节剂及其作用机制的网络。

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