...
首页> 外文期刊>Journal of Theoretical Biology >Algebraic connectivity may explain the evolution of gene regulatory networks.
【24h】

Algebraic connectivity may explain the evolution of gene regulatory networks.

机译:代数连通性可以解释基因调控网络的演变。

获取原文
获取原文并翻译 | 示例
           

摘要

Gene expression is a result of the interplay between the structure, type, kinetics, and specificity of gene regulatory interactions, whose diversity gives rise to the variety of life forms. As the dynamic behavior of gene regulatory networks depends on their structure, here we attempt to determine structural reasons which, despite the similarities in global network properties, may explain the large differences in organismal complexity. We demonstrate that the algebraic connectivity, the smallest non-trivial eigenvalue of the Laplacian, of the directed gene regulatory networks decreases with the increase of organismal complexity, and may therefore explain the difference between the variety of analyzed regulatory networks. In addition, our results point out that, for the species considered in this study, evolution favours decreasing concentration of strategically positioned feed forward loops, so that the network as a whole can increase the specificity towards changing environments. Moreover, contrary to the existing results, we show that the average degree, the length of the longest cascade, and the average cascade length of gene regulatory networks cannot recover the evolutionary relationships between organisms. Whereas the dynamical properties of special subnetworks are relatively well understood, there is still limited knowledge about the evolutionary reasons for the already identified design principles pertaining to these special subnetworks, underlying the global quantitative features of gene regulatory networks of different organisms. The behavior of the algebraic connectivity, which we show valid on gene regulatory networks extracted from curated databases, can serve as an additional evolutionary principle of organism-specific regulatory networks.
机译:基因表达是基因调节相互作用的结构,类型,动力学和特异性之间相互作用的结果,其多样性导致生命形式的多样性。由于基因调控网络的动态行为取决于其结构,因此在此我们尝试确定结构原因,尽管全球网络特性相似,但这些原因可以解释机体复杂性的巨大差异。我们证明,代数连通性,即拉普拉斯算子的最小非平凡特征值,直接基因调控网络随着生物复杂性的增加而降低,因此可以解释所分析的调控网络之间的差异。此外,我们的结果指出,对于本研究中考虑的物种,进化有利于降低战略定位的前馈环的浓度,从而使整个网络可以提高对变化的环境的特异性。此外,与现有结果相反,我们表明基因调控网络的平均程度,最长级联的长度和平均级联长度无法恢复生物之间的进化关系。尽管对特殊子网络的动力学特性的理解相对较好,但是对于进化论的原因,关于这些特殊子网络已经确定的设计原理的进化论仍然知之甚少,这些原理是不同生物体基因调控网络的全球定量特征的基础。代数连通性的行为,在我们从策划的数据库中提取的基因调控网络中证明是有效的,可以作为生物体特定调控网络的另一种进化原理。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号