SummaryThe cyanobacterial circadian clock generates genome-wide transcriptional oscillations and regulates cell division, but the underlying mechanisms are not well understood. Here, we show that the response regulator RpaA serves as the master regulator of these clock outputs. Deletion of rpaA abrogates gene expression rhythms globally and arrests cells in a dawn-like expression state. Although rpaA deletion causes core oscillator failure by perturbing clock gene expression, rescuing oscillator function does not restore global expression rhythms. We show that phosphorylated RpaA regulates the expression of not only clock components, generating feedback on the core oscillator, but also a small set of circadian effectors that, in turn, orche...
Summary: The circadian clock of the cyanobacterium Synechococcus elongatus PCC 7942 drives oscillati...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
Background: Circadian (daily) timekeeping is essential to the survival of many organisms. An integra...
SummaryCyanobacteria have become a major model system for analyzing circadian rhythms. The temporal ...
The remarkably stable circadian oscillations of single cyanobacteria enable a population of growing ...
SummaryBackgroundThe cyanobacterial circadian program exerts genome-wide control of gene expression....
The cyanobacterium Synechococcus elongatus PCC 7942 exhibits oscillations in mRNA transcript abundan...
SummaryCyanobacteria have become a major model system for analyzing circadian rhythms. The temporal ...
Abstract Background Circadian (daily) timekeeping is ...
The daily rhythms that adapt organisms to the solar cycle are driven by internal circadian clocks. T...
Summary: The circadian clock of the cyanobacterium Synechococcus elongatus PCC 7942 drives oscillati...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
The response regulator RpaB (regulator of phycobilisome associated B), part of an essential two-comp...
Background: Circadian (daily) timekeeping is essential to the survival of many organisms. An integra...
SummaryCyanobacteria have become a major model system for analyzing circadian rhythms. The temporal ...
The remarkably stable circadian oscillations of single cyanobacteria enable a population of growing ...
SummaryBackgroundThe cyanobacterial circadian program exerts genome-wide control of gene expression....
The cyanobacterium Synechococcus elongatus PCC 7942 exhibits oscillations in mRNA transcript abundan...
SummaryCyanobacteria have become a major model system for analyzing circadian rhythms. The temporal ...
Abstract Background Circadian (daily) timekeeping is ...
The daily rhythms that adapt organisms to the solar cycle are driven by internal circadian clocks. T...
Summary: The circadian clock of the cyanobacterium Synechococcus elongatus PCC 7942 drives oscillati...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...
Circadian clocks control gene expression to provide an internal representation of local time. We rep...