Structure of Bacterial Transcription Factor SpoIIID and Evidence for a Novel Mode of DNA Binding
Author(s) -
Bin Chen,
Paul Himes,
Yu Liu,
Yang Zhang,
Zhenwei Lu,
Aizhuo Liu,
Honggao Yan,
Lee Kroos
Publication year - 2014
Publication title -
journal of bacteriology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.652
H-Index - 246
eISSN - 1067-8832
pISSN - 0021-9193
DOI - 10.1128/jb.01486-13
Subject(s) - biology , helix turn helix , dna , dna binding site , hmg box , dna binding domain , helix (gastropod) , bacillus subtilis , binding site , dna binding protein , biophysics , transcription factor , biochemistry , genetics , gene , bacteria , promoter , gene expression , ecology , snail
SpoIIID is evolutionarily conserved in endospore-forming bacteria, and it activates or represses many genes during sporulation ofBacillus subtilis . An SpoIIID monomer binds DNA with high affinity and moderate sequence specificity. In addition to a predicted helix-turn-helix motif, SpoIIID has a C-terminal basic region that contributes to DNA binding. The nuclear magnetic resonance (NMR) solution structure of SpoIIID in complex with DNA revealed that SpoIIID does indeed have a helix-turn-helix domain and that it has a novel C-terminal helical extension. Residues in both of these regions interact with DNA, based on the NMR data and on the effects on DNA bindingin vitro of SpoIIID with single-alanine substitutions. These data, as well as sequence conservation in SpoIIID binding sites, were used for information-driven docking to model the SpoIIID-DNA complex. The modeling resulted in a single cluster of models in which the recognition helix of the helix-turn-helix domain interacts with the major groove of DNA, as expected. Interestingly, the C-terminal extension, which includes two helices connected by a kink, interacts with the adjacent minor groove of DNA in the models. This predicted novel mode of binding is proposed to explain how a monomer of SpoIIID achieves high-affinity DNA binding. Since SpoIIID is conserved only in endospore-forming bacteria, which include important pathogenicBacilli andClostridia , whose ability to sporulate contributes to their environmental persistence, the interaction of the C-terminal extension of SpoIIID with DNA is a potential target for development of sporulation inhibitors.
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