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应对基因多效性:酵母基因表达网络的基因组与拓扑分析

Wrestling with pleiotropy: genomic and topological analysis of the yeast gene expression network.

作者信息

Featherstone David E, Broadie Kendal

机构信息

Department of Biology, University of Utah, 257 South 1400 East, Salt Lake City, UT 84112, USA.

出版信息

Bioessays. 2002 Mar;24(3):267-74. doi: 10.1002/bies.10054.

Abstract

The vast majority (>95%) of single-gene mutations in yeast affect not only the expression of the mutant gene, but also the expression of many other genes. These data suggest the presence of a previously uncharacterized "gene expression network"--a set of interactions between genes which dictate gene expression in the native cell environment. Here, we quantitatively analyze the gene expression network revealed by microarray expression data from 273 different yeast gene deletion mutants.(1) We find that gene expression interactions form a robust, error-tolerant "scale-free" network, similar to metabolic pathways(2) and artificial networks such as power grids and the internet.(3-5) Because the connectivity between genes in the gene expression network is unevenly distributed, a scale-free organization helps make organisms resistant to the deleterious effects of mutation, and is thus highly adaptive. The existence of a gene expression network poses practical considerations for the study of gene function, since most mutant phenotypes are the result of changes in the expression of many genes. Using principles of scale-free network topology, we propose that fragmenting the gene expression network via "genome-engineering" may be a viable and practical approach to isolating gene function.

摘要

酵母中绝大多数(>95%)的单基因突变不仅会影响突变基因的表达,还会影响许多其他基因的表达。这些数据表明存在一个此前未被描述的“基因表达网络”——一组基因之间的相互作用,它们在天然细胞环境中决定基因表达。在这里,我们对来自273个不同酵母基因缺失突变体的微阵列表达数据所揭示的基因表达网络进行了定量分析。(1)我们发现基因表达相互作用形成了一个稳健、容错的“无标度”网络,类似于代谢途径(2)以及诸如电网和互联网等人工网络。(3 - 5)由于基因表达网络中基因之间的连接性分布不均,无标度组织有助于生物体抵御突变的有害影响,因此具有高度适应性。基因表达网络的存在对基因功能研究提出了实际考量,因为大多数突变表型是许多基因表达变化的结果。利用无标度网络拓扑学原理,我们提出通过“基因组工程”分割基因表达网络可能是分离基因功能的一种可行且实用的方法。

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