Integrative gene-metabolite network with implemented causality deciphers informational fluxes of sulphur stress response

被引:96
作者
Nikiforova, VJ
Daub, CO
Hesse, H
Willmitzer, L
Hoefgen, R
机构
[1] Max Planck Inst Mol Plant Physiol, Dept Mol Physiol, D-14476 Golm, Germany
[2] Russian Acad Sci, Timiryazev Inst Plant Physiol, Moscow 127276, Russia
关键词
auxin; causality; metabolome; network; network topology; plait concept; scale-free network; sulphur metabolism; systems biology; transcriptome;
D O I
10.1093/jxb/eri179
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The systematic accumulation of gene expression data, although revolutionary, is insufficient in itself for an understanding of system-level physiology. In the post-genomic era, the next cognitive step is linking genes to biological processes and assembling a mosaic of data into global models of biosystem function. A dynamic network of informational flows in Arabidopsis plants perturbed by sulphur depletion is presented here. With the use of an original protocol, the first blosystem response network was reconstructed from a time series of transcript and metabolite profiles, which, on the one hand, integrates complex metabolic and transcript data and, on the other hand, possesses a causal relationship. Using the informational fluxes within this reconstruction, it was possible to link system perturbation to response endpoints. Robustness and stress tolerance, as consequences of scale-free network topology, and hubs, as potential controllers of homeostasis maintenance, were revealed. Communication paths of propagating system excitement directed to physiological endpoints, such as anthocyanin accumulation and enforced root formation were dissected from the network. An auxin regulatory circuit involved in the control of a hypo-sulphur stress response was uncovered.
引用
收藏
页码:1887 / 1896
页数:10
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