TY - JOUR
T1 - Optimization of the Palindromic Order of the TtgR Operator Enhances Binding Cooperativity
AU - Krell, Tino
AU - Terán, Wilson
AU - Mayorga, Obdulio López
AU - Rivas, Germán
AU - Jiménez, Mercedes
AU - Daniels, Craig
AU - Molina-Henares, Antonio Jesús
AU - Martínez-Bueno, Manuel
AU - Gallegos, María Trinidad
AU - Ramos, Juan Luis
N1 - Funding Information:
This study was supported by grants BIO2003-00515 and BIO2006-05668 from the CICYT, and by grants CVI-344 and CVI-1912 from Junta de Andalucía. We thank C. Lorente and M. Fandila for secretarial assistance and K. Shashok for improving the use of English in the paper.
PY - 2007/6/22
Y1 - 2007/6/22
N2 - TtgR is the specific transcriptional repressor of the TtgABC efflux pump. TtgR and the TtgB efflux pump proteins possess multidrug-binding capacity, and their concerted action is responsible for the multidrug resistance phenotype of Pseudomonas putida DOT-T1E. TtgR binds to a pseudo-palindromic site that overlaps the ttgR/ttgA promoters. Dimethylsulfate footprint assays reveal a close interaction between TtgR and the central region of this operator. The results of analytical ultracentrifugation demonstrate that TtgR forms stable dimers in solution, and that two dimers bind to the operator. Microcalorimetric analysis of the binding of the two TtgR dimers to the cognate operator showed biphasic behavior, and an interaction model was developed for the cooperative binding of two TtgR dimers to their target operators. The binding of the two TtgR dimers to the operator was characterized by a Hill coefficient of 1.63 ± 0.13 (kD = 18.2( ± 6.3) μM, kD′ = 0.91( ± 0.49) μM), indicating positive cooperativity. These data are in close agreement with the results of sedimentation equilibrium studies of TtgR-DNA complexes. A series of oligonucleotides were generated in which the imperfect palindrome of the TtgR operator was empirically optimized. Optimization of the palindrome did not significantly alter the binding of the initial TtgR dimer to the operator, but increased the cooperativity of binding and consequently the overall affinity. The minimal fragment for TtgR binding was a 30-mer DNA duplex, and analysis of its sequence revealed two partially overlapping inverted repeats co-existing within the large pseudo-palindrome operator. Based on the architecture of the operator, the thermodynamics of the process, and the TtgR-operator interactions we propose a model for the binding of TtgR to its target sequence.
AB - TtgR is the specific transcriptional repressor of the TtgABC efflux pump. TtgR and the TtgB efflux pump proteins possess multidrug-binding capacity, and their concerted action is responsible for the multidrug resistance phenotype of Pseudomonas putida DOT-T1E. TtgR binds to a pseudo-palindromic site that overlaps the ttgR/ttgA promoters. Dimethylsulfate footprint assays reveal a close interaction between TtgR and the central region of this operator. The results of analytical ultracentrifugation demonstrate that TtgR forms stable dimers in solution, and that two dimers bind to the operator. Microcalorimetric analysis of the binding of the two TtgR dimers to the cognate operator showed biphasic behavior, and an interaction model was developed for the cooperative binding of two TtgR dimers to their target operators. The binding of the two TtgR dimers to the operator was characterized by a Hill coefficient of 1.63 ± 0.13 (kD = 18.2( ± 6.3) μM, kD′ = 0.91( ± 0.49) μM), indicating positive cooperativity. These data are in close agreement with the results of sedimentation equilibrium studies of TtgR-DNA complexes. A series of oligonucleotides were generated in which the imperfect palindrome of the TtgR operator was empirically optimized. Optimization of the palindrome did not significantly alter the binding of the initial TtgR dimer to the operator, but increased the cooperativity of binding and consequently the overall affinity. The minimal fragment for TtgR binding was a 30-mer DNA duplex, and analysis of its sequence revealed two partially overlapping inverted repeats co-existing within the large pseudo-palindrome operator. Based on the architecture of the operator, the thermodynamics of the process, and the TtgR-operator interactions we propose a model for the binding of TtgR to its target sequence.
KW - Pseudomonas
KW - TetR family
KW - analytical ultracentrifugation
KW - repressor
KW - transcriptional regulation
UR - http://www.scopus.com/inward/record.url?scp=34248659949&partnerID=8YFLogxK
U2 - 10.1016/j.jmb.2007.04.025
DO - 10.1016/j.jmb.2007.04.025
M3 - Article
C2 - 17498746
AN - SCOPUS:34248659949
SN - 0022-2836
VL - 369
SP - 1188
EP - 1199
JO - Journal of Molecular Biology
JF - Journal of Molecular Biology
IS - 5
ER -