It is widely suspected that gene regulatory networks are highly plastic. The rapid turnover of transcription factor binding sites has been predicted on theoretical grounds and has been experimentally demonstrated in closely related species. We combined experimental approaches with comparative genomics to focus on the role of combinatorial control in the evolution of a large transcriptional circuit in the fungal lineage. Our study centers on Mcm1, a transcriptional regulator that, in combination with five cofactors, binds roughly 4% of the genes in Saccharomyces cerevisiae and regulates processes ranging from the cell-cycle to mating. In Kluyveromyces lactis and Candida albicans, two other hemiascomycetes, we find that the Mcm1 combinatorial...
Background: The diversity in eukaryotic life reflects a diversity in regulatory pathways. Nocedal an...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...
The coordination of cellular processes is largely controlled at the level of transcriptional regulat...
AbstractDeveloping new regulation of existing genes is likely a key mechanism by which organismal co...
The immense diversity of life is astounding. Yet this variety is in stark contrast with life’s genet...
The gradual rewiring of transcriptional circuits over evolutionary timescales is a major source of t...
Abstract Background The diversity in eukaryotic life ...
The duplication of transcription regulators can elicit major regulatory network rearrangements over ...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
Evolutionary rewiring of regulatory networks is an important source of diversity among species. Prev...
Transcriptional regulatory networks play a central role in optimizing cell survival. How DNA binding...
The mystery of how diverse life forms evolved has captivated scientists for over 150 years. It has b...
Fungi have evolved diverse morphological strategies to adapt and thrive in harsh environmental condi...
Transcription regulatory networks are an important source of evolutionary novelty. My thesis work d...
Background: The diversity in eukaryotic life reflects a diversity in regulatory pathways. Nocedal an...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...
The coordination of cellular processes is largely controlled at the level of transcriptional regulat...
AbstractDeveloping new regulation of existing genes is likely a key mechanism by which organismal co...
The immense diversity of life is astounding. Yet this variety is in stark contrast with life’s genet...
The gradual rewiring of transcriptional circuits over evolutionary timescales is a major source of t...
Abstract Background The diversity in eukaryotic life ...
The duplication of transcription regulators can elicit major regulatory network rearrangements over ...
A central challenge to post-genomic biology is to elucidate the cellular networks that underlie biol...
Evolutionary rewiring of regulatory networks is an important source of diversity among species. Prev...
Transcriptional regulatory networks play a central role in optimizing cell survival. How DNA binding...
The mystery of how diverse life forms evolved has captivated scientists for over 150 years. It has b...
Fungi have evolved diverse morphological strategies to adapt and thrive in harsh environmental condi...
Transcription regulatory networks are an important source of evolutionary novelty. My thesis work d...
Background: The diversity in eukaryotic life reflects a diversity in regulatory pathways. Nocedal an...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...
Relatively little is known about the mechanisms through which gene expression regulation evolves. To...