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Query: UNIPROT:P20226 (
TATA-binding protein
)
1,297
document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)
The Swi2/Snf2 family
ATPase
Mot1 displaces
TATA-binding protein
(
TBP
) from DNA in vitro, but the global relationship between Mot1 and
TBP
in vivo is unclear. In particular, how Mot1 activates transcription is poorly understood. To address these issues, we mapped the distribution of Mot1 and
TBP
on native chromatin at base pair resolution. Mot1 and
TBP
binding sites coincide throughout the genome, and depletion of
TBP
results in a global decrease in Mot1 binding. We find evidence that Mot1 approaches
TBP
from the upstream direction, consistent with its in vitro mode of action. Strikingly, inactivation of Mot1 leads to both increases and decreases in
TBP
-genome association. Sites of
TBP
gain tend to contain robust TATA boxes, while sites of
TBP
loss contain poly(dA-dT) tracts that may contribute to nucleosome exclusion. Sites of
TBP
gain are associated with increased gene expression, while decreased
TBP
binding is associated with reduced gene expression. We propose that the action of Mot1 is required to clear
TBP
from intrinsically preferred (TATA-containing) binding sites, ensuring sufficient soluble
TBP
to bind intrinsically disfavored (TATA-less) sites.
...
PMID:Mot1 redistributes TBP from TATA-containing to TATA-less promoters. 2414 78
Modifier of transcription 1 (Mot1) is a conserved and essential Swi2/Snf2
ATPase
that can remove
TATA-binding protein
(
TBP
) from DNA using ATP hydrolysis and in so doing exerts global effects on transcription. Spt16 is also essential and functions globally in transcriptional regulation as a component of the facilitates chromatin transcription (FACT) histone chaperone complex. Here we demonstrate that Mot1 and Spt16 regulate a largely overlapping set of genes in Saccharomyces cerevisiae. As expected, Mot1 was found to control
TBP
levels at co-regulated promoters. In contrast, Spt16 did not affect
TBP
recruitment. On a global scale, Spt16 was required for Mot1 promoter localization, and Mot1 also affected Spt16 localization to genes. Interestingly, we found that Mot1 has an unanticipated role in establishing or maintaining the occupancy and positioning of nucleosomes at the 5' ends of genes. Spt16 has a broad role in regulating chromatin organization in gene bodies, including those nucleosomes affected by Mot1. These results suggest that the large scale overlap in Mot1 and Spt16 function arises from a combination of both their unique and shared functions in transcription complex assembly and chromatin structure regulation.
...
PMID:The Modifier of Transcription 1 (Mot1) ATPase and Spt16 Histone Chaperone Co-regulate Transcription through Preinitiation Complex Assembly and Nucleosome Organization. 2722 35
The essential Saccharomyces cerevisiae
ATPase
Mot1 globally regulates transcription by impacting the genomic distribution and activity of the
TATA-binding protein
(
TBP
). In vitro, Mot1 forms a ternary complex with
TBP
and DNA and can use ATP hydrolysis to dissociate the
TBP
-DNA complex. Prior work suggested an interaction between the
ATPase
domain and a functionally important segment of DNA flanking the TATA sequence. However, how ATP hydrolysis facilitates removal of
TBP
from DNA is not well understood, and several models have been proposed. To gain insight into the Mot1 mechanism, we dissected the role of the flanking DNA segment by biochemical analysis of complexes formed using DNAs with short single-stranded gaps. In parallel, we used a DNA tethered cleavage approach to map regions of Mot1 in proximity to the DNA under different conditions. Our results define non-equivalent roles for bases within a broad segment of flanking DNA required for Mot1 action. Moreover, we present biochemical evidence for two distinct conformations of the Mot1
ATPase
, the detection of which can be modulated by ATP analogs as well as DNA sequence flanking the TATA sequence. We also show using purified complexes that Mot1 dissociation of a stable, high affinity
TBP
-DNA interaction is surprisingly inefficient, suggesting how other transcription factors that bind to
TBP
may compete with Mot1. Taken together, these results suggest that
TBP
-DNA affinity as well as other aspects of promoter sequence influence Mot1 function in vivo.
...
PMID:Molecular Mechanism of Mot1, a TATA-binding Protein (TBP)-DNA Dissociating Enzyme. 2725 9
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