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1.
Nucleic Acids Res ; 48(9): e49, 2020 05 21.
Article in English | MEDLINE | ID: mdl-32095832

ABSTRACT

Electron paramagnetic resonance (EPR) has become an important tool to probe conformational changes in nucleic acids. An array of EPR labels for nucleic acids are available, but they often come at the cost of long tethers, are dependent on the presence of a particular nucleotide or can be placed only at the termini. Site directed incorporation of Cu2+-chelated to a ligand, 2,2'dipicolylamine (DPA) is potentially an attractive strategy for site-specific, nucleotide independent Cu2+-labelling in DNA. To fully understand the potential of this label, we undertook a systematic and detailed analysis of the Cu2+-DPA motif using EPR and molecular dynamics (MD) simulations. We used continuous wave EPR experiments to characterize Cu2+ binding to DPA as well as optimize Cu2+ loading conditions. We performed double electron-electron resonance (DEER) experiments at two frequencies to elucidate orientational selectivity effects. Furthermore, comparison of DEER and MD simulated distance distributions reveal a remarkable agreement in the most probable distances. The results illustrate the efficacy of the Cu2+-DPA in reporting on DNA backbone conformations for sufficiently long base pair separations. This labelling strategy can serve as an important tool for probing conformational changes in DNA upon interaction with other macromolecules.


Subject(s)
Copper/chemistry , DNA/chemistry , Electron Spin Resonance Spectroscopy , Amines/chemistry , Molecular Dynamics Simulation , Nucleic Acid Conformation , Picolinic Acids/chemistry
2.
J Mol Biol ; 426(1): 84-104, 2014 Jan 09.
Article in English | MEDLINE | ID: mdl-24041571

ABSTRACT

As a novel approach to the structural and functional properties that give rise to extremely stringent sequence specificity in protein-DNA interactions, we have exploited "promiscuous" mutants of EcoRI endonuclease to study the detailed mechanism by which changes in a protein can relax specificity. The A138T promiscuous mutant protein binds more tightly to the cognate GAATTC site than does wild-type EcoRI yet displays relaxed specificity deriving from tighter binding and faster cleavage at EcoRI* sites (one incorrect base pair). AAATTC EcoRI* sites are cleaved by A138T up to 170-fold faster than by wild-type enzyme if the site is abutted by a 5'-purine-pyrimidine (5'-RY) motif. When wild-type protein binds to an EcoRI* site, it forms structurally adapted complexes with thermodynamic parameters of binding that differ markedly from those of specific complexes. By contrast, we show that A138T complexes with 5'-RY-flanked AAATTC sites are virtually indistinguishable from wild-type-specific complexes with respect to the heat capacity change upon binding (∆C°P), the change in excluded macromolecular volume upon association, and contacts to the phosphate backbone. While the preference for the 5'-RY motif implicates contacts to flanking bases as important for relaxed specificity, local effects are not sufficient to explain the large differences in ∆C°P and excluded volume, as these parameters report on global features of the complex. Our findings therefore support the view that specificity does not derive from the additive effects of individual interactions but rather from a set of cooperative events that are uniquely associated with specific recognition.


Subject(s)
DNA/metabolism , Deoxyribonuclease EcoRI/metabolism , DNA Mutational Analysis , Kinetics , Protein Binding , Substrate Specificity , Thermodynamics
3.
Proc Natl Acad Sci U S A ; 109(17): E993-1000, 2012 Apr 24.
Article in English | MEDLINE | ID: mdl-22493217

ABSTRACT

The relationship between DNA sequence recognition and catalytic specificity in a DNA-modifying enzyme was explored using paramagnetic Cu(2+) ions as probes for ESR spectroscopic and biochemical studies. Electron spin echo envelope modulation spectroscopy establishes that Cu(2+) coordinates to histidine residues in the EcoRI endonuclease homodimer bound to its specific DNA recognition site. The coordinated His residues were identified by a unique use of Cu(2+)-ion based long-range distance constraints. Double electron-electron resonance data yield Cu(2+)-Cu(2+) and Cu(2+)-nitroxide distances that are uniquely consistent with one Cu(2+) bound to His114 in each subunit. Isothermal titration calorimetry confirms that two Cu(2+) ions bind per complex. Unexpectedly, Mg(2+)-catalyzed DNA cleavage by EcoRI is profoundly inhibited by Cu(2+) binding at these hitherto unknown sites, 13 Å away from the Mg(2+) positions in the catalytic centers. Molecular dynamics simulations suggest a model for inhibition of catalysis, whereby the Cu(2+) ions alter critical protein-DNA interactions and water molecule positions in the catalytic sites. In the absence of Cu(2+), the Mg(2+)-dependence of EcoRI catalysis shows positive cooperativity, which would enhance EcoRI inactivation of foreign DNA by irreparable double-strand cuts, in preference to readily repaired single-strand nicks. Nonlinear Poisson-Boltzmann calculations suggest that this cooperativity arises because the binding of Mg(2+) in one catalytic site makes the surface electrostatic potential in the distal catalytic site more negative, thus enhancing binding of the second Mg(2+). Taken together, our results shed light on the structural and electrostatic factors that affect site-specific catalysis by this class of endonucleases.


Subject(s)
Copper/metabolism , DNA Modification Methylases/metabolism , DNA/metabolism , Electron Spin Resonance Spectroscopy/methods , Biocatalysis , Catalytic Domain , DNA Modification Methylases/chemistry , Dimerization , Histidine/metabolism , Molecular Dynamics Simulation
4.
Structure ; 12(10): 1775-88, 2004 Oct.
Article in English | MEDLINE | ID: mdl-15458627

ABSTRACT

Proteins that bind to specific sites on DNA often do so in order to carry out catalysis or specific protein-protein interaction while bound to the recognition site. Functional specificity is enhanced if this second function is coupled to correct DNA site recognition. To analyze the structural and energetic basis of coupling between recognition and catalysis in EcoRI endonuclease, we have studied stereospecific phosphorothioate (PS) or methylphosphonate (PMe) substitutions at the scissile phosphate GpAATTC or at the adjacent phosphate GApATTC in combination with molecular-dynamics simulations of the catalytic center with bound Mg2+. The results show the roles in catalysis of individual phosphoryl oxygens and of DNA distortion and suggest that a "crosstalk ring" in the complex couples recognition to catalysis and couples the two catalytic sites to each other.


Subject(s)
DNA/chemistry , Deoxyribonuclease EcoRI/chemistry , Adenine Nucleotides/chemistry , Base Sequence , Binding Sites , Catalysis , Catalytic Domain , DNA/metabolism , Deoxyribonuclease EcoRI/metabolism , Magnesium/chemistry , Models, Molecular , Nucleic Acid Conformation , Organophosphorus Compounds/chemistry , Oxygen/chemistry , Phosphates/chemistry , Substrate Specificity
5.
J Mol Biol ; 337(3): 621-34, 2004 Mar 26.
Article in English | MEDLINE | ID: mdl-15019782

ABSTRACT

Archaeal family B DNA polymerases contain a specialised pocket that binds tightly to template-strand uracil, causing the stalling of DNA replication. The mechanism of this unique "template-strand proof-reading" has been studied using equilibrium binding measurements, DNA footprinting, van't Hoff analysis and calorimetry. Binding assays have shown that the polymerase preferentially binds to uracil in single as opposed to double-stranded DNA. Tightest binding is observed using primer-templates that contain uracil four bases in front of the primer-template junction, corresponding to the observed stalling position. Ethylation interference analysis of primer-templates shows that the two phosphates, immediately flanking the uracil (NpUpN), are important for binding; contacts are also made to phosphates in the primer-strand. Microcalorimetry and van't Hoff analysis have given a fuller understanding of the thermodynamic parameters involved in uracil recognition. All the results are consistent with a "read-ahead" mechanism, in which the replicating polymerase scans the template, ahead of the replication fork, for the presence of uracil and halts polymerisation on detecting this base. Post-stalling events, serving to eliminate uracil, await full elucidation.


Subject(s)
Archaea/genetics , DNA-Directed DNA Polymerase/metabolism , Uracil/metabolism , Base Sequence , DNA Replication , DNA, Single-Stranded , Mutagenesis , Oligodeoxyribonucleotides/metabolism , Protein Binding , Templates, Genetic , Thermodynamics
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