Summary information and primary citation
- PDB-id
-
1exj;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- transcription-DNA
- Method
- X-ray (3.0 Å)
- Summary
- Crystal structure of transcription activator bmrr, from
b. subtilis, bound to 21 base pair bmr operator and
tpp
- Reference
-
Heldwein EE, Brennan RG (2001): "Crystal
structure of the transcription activator BmrR bound to
DNA and a drug." Nature,
409, 378-382. doi: 10.1038/35053138.
- Abstract
- The efflux of chemically diverse drugs by multidrug
transporters that span the membrane is one mechanism of
multidrug resistance in bacteria. The concentrations of
many of these transporters are controlled by transcription
regulators, such as BmrR in Bacillus subtilis, EmrR in
Escherichia coli and QacR in Staphylococcus aureus. These
proteins promote transporter gene expression when they bind
toxic compounds. BmrR activates transcription of the
multidrug transporter gene, bmr, in response to cellular
invasion by certain lipophilic cationic compounds (drugs).
BmrR belongs to the MerR family, which regulates response
to stress such as exposure to toxic compounds or oxygen
radicals in bacteria. MerR proteins have homologous
amino-terminal DNA-binding domains but different
carboxy-terminal domains, which enable them to bind
specific 'coactivator' molecules. When bound to
coactivator, MerR proteins upregulate transcription by
reconfiguring the 19-base-pair spacer found between the -35
and -10 promoter elements to allow productive interaction
with RNA polymerase. Here we report the 3.0 A resolution
structure of BmrR in complex with the drug
tetraphenylphosphonium (TPP) and a 22-base-pair
oligodeoxynucleotide encompassing the bmr promoter. The
structure reveals an unexpected mechanism for transcription
activation that involves localized base-pair breaking, and
base sliding and realignment of the -35 and -10 operator
elements.