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基因表达稳态与染色体结构

Gene expression homeostasis and chromosome architecture.

作者信息

Seshasayee Aswin Sai Narain

机构信息

a National Center for Biological Sciences; Tata Institute of Fundamental Research ; Bangalore , India.

出版信息

Bioarchitecture. 2014;4(6):221-5. doi: 10.1080/19490992.2015.1040213. Epub 2015 May 21.

Abstract

In rapidly growing populations of bacterial cells, including those of the model organism Escherichia coli, genes essential for growth--such as those involved in protein synthesis--are expressed at high levels; this is in contrast to many horizontally-acquired genes, which are maintained at low transcriptional levels. (1) This balance in gene expression states between 2 distinct classes of genes is established by a galaxy of transcriptional regulators, including the so-called nucleoid associated proteins (NAP) that contribute to shaping the chromosome. (2) Besides these active players in gene regulation, it is not too far-fetched to anticipate that genome organization in terms of how genes are arranged on the chromosome, (3) which is the result of long-drawn transactions among genome rearrangement processes and selection, and the manner in which it is structured inside the cell, plays a role in establishing this balance. A recent study from our group has contributed to the literature investigating the interplay between global transcriptional regulators and genome organization in establishing gene expression homeostasis. (4) In particular, we address a triangle of functional interactions among genome organization, gene expression homeostasis and horizontal gene transfer.

摘要

在快速生长的细菌细胞群体中,包括模式生物大肠杆菌的细胞,生长所必需的基因(如参与蛋白质合成的基因)会高水平表达;这与许多水平获得的基因形成对比,后者维持在低转录水平。(1)这两类不同基因之间基因表达状态的这种平衡是由一系列转录调节因子建立的,包括有助于塑造染色体的所谓类核相关蛋白(NAP)。(2)除了这些基因调控中的活跃参与者外,可以合理推测,就基因在染色体上的排列方式而言的基因组组织,(3)这是基因组重排过程和选择之间长期相互作用的结果,以及它在细胞内的结构方式,在建立这种平衡中发挥作用。我们小组最近的一项研究为探讨全局转录调节因子与基因组组织在建立基因表达稳态中的相互作用的文献做出了贡献。(4)特别是,我们探讨了基因组组织、基因表达稳态和水平基因转移之间的三角功能相互作用。

相似文献

1
Gene expression homeostasis and chromosome architecture.
Bioarchitecture. 2014;4(6):221-5. doi: 10.1080/19490992.2015.1040213. Epub 2015 May 21.
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The genome-scale interplay amongst xenogene silencing, stress response and chromosome architecture in Escherichia coli.
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本文引用的文献

1
Spatial features for Escherichia coli genome organization.
BMC Genomics. 2015 Feb 5;16(1):37. doi: 10.1186/s12864-015-1258-1.
5
The genome-scale interplay amongst xenogene silencing, stress response and chromosome architecture in Escherichia coli.
Nucleic Acids Res. 2015 Jan;43(1):295-308. doi: 10.1093/nar/gku1229. Epub 2014 Nov 27.
6
Silencing by H-NS potentiated the evolution of Salmonella.
PLoS Pathog. 2014 Nov 6;10(11):e1004500. doi: 10.1371/journal.ppat.1004500. eCollection 2014 Nov.
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Widespread suppression of intragenic transcription initiation by H-NS.
Genes Dev. 2014 Feb 1;28(3):214-9. doi: 10.1101/gad.234336.113. Epub 2014 Jan 21.
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Genomic analysis reveals epistatic silencing of "expensive" genes in Escherichia coli K-12.
Mol Biosyst. 2013 Aug;9(8):2021-33. doi: 10.1039/c3mb70035f. Epub 2013 May 9.

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