We investigate the structural and dynamical properties of the transcriptional regulatory network of the yeast Saccharomyces cerevisiae and compare it with two “unbiased ” ensembles: one obtained by reshuffling the edges and the other generated by mimicking the transcriptional regulation mechanism within the cell. Both ensembles reproduce the degree distributions (the first-by construction- exactly and the second approximately), degree-degree cor-relations and the k-core structure observed in Yeast. An exceptionally large dynamically relevant core network found in Yeast in comparison with the second ensemble points to a strong bias towards a collective organization which is achieved by subtle modifications in the network’s degree distribu-ti...
Transcriptional regulation is the most committed type of regulation in living cells where transcript...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
Texto completo arXiv:0902.4147v2We investigate the dynamical properties of the transcriptional regu...
Recent progresses in the protein regulatory network of budding yeast Saccharomyces cerevisiae have p...
We analyse paths through the regulatory networks that control gene-expression patterns in Yeast, in ...
Recently, important insights into static network topology for biological systems have been obtained,...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
Recently, important insights into static network topology for biological systems have been obtained,...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
Living organisms are remarkably robust despite fluctuating concentrations of functional molecules in...
We have determined how most of the transcriptional regulators encoded in the eukaryote Saccharomyces...
We have determined how most of the transcriptional regulators encoded in the eukaryote Saccharomyces...
Transcriptional regulation is the most committed type of regulation in living cells where transcript...
Transcriptional regulation is the most committed type of regulation in living cells where transcript...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
Texto completo arXiv:0902.4147v2We investigate the dynamical properties of the transcriptional regu...
Recent progresses in the protein regulatory network of budding yeast Saccharomyces cerevisiae have p...
We analyse paths through the regulatory networks that control gene-expression patterns in Yeast, in ...
Recently, important insights into static network topology for biological systems have been obtained,...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
Recently, important insights into static network topology for biological systems have been obtained,...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
The regulation of gene expression in a cell relies to a major extent on transcription factors, prote...
Living organisms are remarkably robust despite fluctuating concentrations of functional molecules in...
We have determined how most of the transcriptional regulators encoded in the eukaryote Saccharomyces...
We have determined how most of the transcriptional regulators encoded in the eukaryote Saccharomyces...
Transcriptional regulation is the most committed type of regulation in living cells where transcript...
Transcriptional regulation is the most committed type of regulation in living cells where transcript...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...