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J R Cann

Publications and source records attributed to J R Cann.

At least 19 recordsLinked to original sources

Theoretical studies on the mobility-shift assay of protein-DNA complexes.

The theory of mass transport coupled to reversible macromolecular interactions under chemical kinetic control forms the basis for computer simulation of the electrophoretic mobility-shift behavior of protein-DNA complexes. Model systems include (i) specific binding of a univalent protein molecule to a single site on the DNA molecule; (ii) the putative cage effect; (iii) cooperative binding to multiple sites; (iv) formation of looped complexes of 1:1 and 2:1 stoichiometry; (v) noncooperative and cooperative, nonspecific binding modes; and (vi) binding of dimerizing transcriptional factors to response elements of target genes. Favorable comparison of simulated with experimental mobility-shift behavior indicates that the phenomenological mechanisms, whereby observed mobility-shift patterns are generated during electrophoresis, are embodied in the theory. These studies have provided guidelines for definitive interpretation of mobility-shift assays and for the design of experiments to develop a detailed understanding of the particular system under investigation.

Animals

Incorporation of dispersion into the theory of electrophoresis of DNA and its complexes.

Incorporation of the dispersion coefficient into the theory of the mobility-shift assay for DNA-protein complexes was highly successful largely due to increased mathematical rigor. A model simulating electrophoretic migration of DNA across the phase boundary between the initial zone of macromolecule and the gel lane predicts the peak asymmetry observed experimentally. It also predicts that, under the agency of the dispersion coefficient, the peak will become progressively more symmetrical during migration along the gel lane.

DNA

Theory and practice of isoelectric focusing of interacting systems.

The theory of mass transport coupled to reversible protein interactions forms the basis for computer simulation of the isoelectric focusing behavior of several model systems. These include pH-dependent conformational transition, carrier ampholyte-induced interactions and protein-ligand interactions. The computational results compare favorably with experimental observations. In addition, a method is formulated for an isoelectric focusing procedure which enables determination of intrinsic ligand-binding constants for statistical binding of a charged ligand, binding to heterogeneous sites, and cooperative binding.

Ampholyte Mixtures

NMR and CD conformational studies of bradykinin and its agonists and antagonists: application to receptor binding.

Most physiological processes are regulated by peptides that perform their functions by interacting with specific receptors on cells. Specific conformations of the peptides are required for correct interactions to take place, and a knowledge of the biologically important conformation is vital for the understanding of biological function. Over the last few years extensive studies using nuclear magnetic resonance and circular dichroism have been carried out on bradykinin (Arg1-Pro2-Pro3-Gly4-Phe5-Ser6-Pro7-Phe8-Arg9) and its antagonists with the objective of developing new drugs to combat severe pathologies associated with its production. In the present review, these techniques for the determination of peptide conformation are reviewed and applied to the study of bradykinin and its antagonists. Modeling of these conformational data in the presence of the B2 receptor or an antibody allows the biologically active conformations to be deduced and these are presented in this review.

Amino Acid Substitution

A comparative NMR and molecular dynamics study of the conformations of bradykinin B1 and B2, B2, and B1-specific receptor antagonists B-9430, B-9436, and B-9858.

Extensive proton magnetic resonance experiments were carried out on three bradykinin peptide antagonists B-9430, B-9436, and B-9858 in aqueous solutions as well as in sodium dodecylsulphate micelles (B-9430 and B-9436) and CD3OH/H2O (60%/40%) mixtures for B-9858. All three peptides showed no observable secondary structure in aqueous solution. However, in their respective structure-inducing solvents, B-9430 (B1 and B2 receptor antagonist) and B-9436 (a B2 receptor antagonist) exhibit a type II beta-turn involving residues 2-5, and B-9430 also exhibits a type II' beta-turn involving residues 6-9 (in sodium dodecylsulfate micellar solutions), whereas B-9858, a B1-specific receptor antagonist, exhibits only a type II beta-turn involving residues 2-5 (in CD3OH/H2O solutions). Simulated annealing calculations on B-9858 confirm the experimental conclusions based on the nmr data. In addition, simulated annealing of the (2S, 3aS, 7aS)-octahydroindole-2-carboxylic acid (Oic residue), which is present in two of the three decapeptides studied, show that the one-chair conformation of the six-membered ring predominates, in agreement with the experimental data. The activities of these peptides are compared with their secondary structures and the specific receptor activity appears to depend on the presence of specific amino acid residues, such as N-(2-indanyl) glycine (Nig) and D[alpha-(2-indanyl) glycine] (D-Igl) as well as on elements of secondary structure.

Amino Acid Sequence

Models of mobility-shift assay of complexes between dimerizing protein and DNA.

The theory of mass transport coupled to macromolecular interactions under chemical kinetic control forms the basis of four different models of the electrophoretic mobility-shift assay of complexes formed between dimerizing proteins and DNA. The theory of mass action was applied to the set of simultaneous dimerization (either simple or ligand-induced) and DNA-binding reactions in order to fix the initial equilibrium composition of mixtures to be assayed. Theoretical mobility-shift patterns were obtained for a range of protein concentrations at constant DNA concentration by numerical solution of the set of simultaneous transport-reaction equations appropriate for each model. In those cases in which dimerization in solution is modeled (including heterodimerization), analysis of the peaks in the patterns provides apparent binding constants, which, when extrapolated to infinite dilution of protein, yield acceptable estimates of equilibrium constants. Those for binding of dimer are products of two or three equilibrium constants, from which the equilibrium binding constant can be extracted, provided that dimerization and, where required, ligand-binding constants are determined by independent physicochemical methods. Dimerization of protein when bound to DNA is distinctive in that extrapolation to infinite dilution of protein is not required.

DNA

Demonstration of an upper limit to the range of association rate constants amenable to study by biosensor technology based on surface plasmon resonance.

Numerical simulation of BIAcore sensorgrams has highlighted the need for concern about an assumption, inherent in current determinations of rate constants for macromolecular interactions, that the concentration of solute in the flowing phase remains constant at its injected value. This assumption is shown to be valid for systems with effective association rate constants equal to or less than 10 M(-1) values characteristic of antibody interactions with protein antigens. However, the assumption loses validity when the effective association rate constant is raised to 10 M' . The basic correctness of the latter prediction is verified by an experimental study of the interaction between soybean trypsin inhibitor and immobilized -trypsin, a system with comparable reaction kinetics.

Animals

An NMR, CD, molecular dynamics, and fluorometric study of the conformation of the bradykinin antagonist B-9340 in water and in aqueous micellar solutions.

A detailed NMR, CD, fluorometry, and molecular modeling study of a novel bradykinin antagonist B-9340, containing a novel amino acid D-Igl (alpha-(2-indanyl)glycine) at position 7, was carried out. The sequence of B-9340 is D-Arg0-Arg1-Pro2-Hyp3-Gly4-Thi5-Ser6-D- Igl7-Oic8-Arg9, where Hyp is hydroxyproline, Thi is beta-(2-thienyl)alanine, and Oic is (3aS,7aS)-octahydroindole-2-carboxylic acid. The CD results exhibit a striking effect of SDS on the spectrum of the BK antagonist, indicating that interaction with the surfactant induces a folded peptide structure. The interaction of this antagonist with phosphatidylinositol was monitored by fluorometry, indicating that the interaction of the peptide with the lipid is cooperative, and gives a Hill coefficient of 2.3. The two-dimensional proton NMR measurements indicate that B-9340 has no stable secondary structure in water solution and contains about 10-15% cis peptide bonds arising from Pro2, Hyp3, and Oic8. In SDS micelles, NMR reveals the existence of two beta-turns based on a number of medium-range connectivities that were useful for molecular modeling. The actual molecular modeling and dynamic runs were performed on B-9340 in an environment consisting of a layer of octyl sulfate anions and water. Ther results indicate that the structure of B-9340 in a micellar environment is characterized by a nonideal betaII-turn comprising residues Pro2 to Thi5, a nonideal betaII'-turn comprising residues Ser6-Arg9, and broad folding in the middle part of the molecule. The structure is stabilized by several hydrogen bonds and by a salt bridge between the guanidine moiety of Arg1 and the carboxyl group of Arg9, whereas the middle part of the peptide is buried in the micelle. The structure is deposited as Brookhaven PDB file 1 BDK.

Amino Acid Sequence

Extended theory of the electrophoretic mobility-shift analysis of nonspecific protein-DNA complexes, featuring cooperativity.

The simulated electrophoretic mobility-shift behavior of a model system, in which the nonspecific binding of a protein to a DNA fragment is cooperative, was compared with the experimental behavior of the DNA: histone-like bacterial protein (HU) system. It was concluded that the binding of HU to an 88 bp DNA fragment is, at least, not highly cooperative. The theory of mobility-shift analysis was extended even further to encompass high affinity sequence-specific binding of protein to a DNA fragment followed by weak nonspecific binding, the latter governed by conditional probabilities. In addition to featuring a ladder of incremental protein-DNA complexes, the computed mobility-shift patterns placed emphasis upon stabilization of weak, nonspecific complexes in gel cages.

Bacterial Proteins

Comment on mobility-shift computations featuring cage effects.

Theoretical mobility-shift patterns are computed by solution of conservation equations for electrophoresis coupled with chemical reaction. The chemical reaction term is often formulated in terms of dissociation of the protein-DNA complex in a gel cage. This formulation assumes that once the dissociated protein escapes the cage, it goes down a sink and is totally lost. This implies that the concentration of the escaped protein is too low to affect significantly the rates of protein-DNA association along its migration pathway.

Bacterial Proteins

Theory of the mobility-shift assay of nonspecific protein-DNA complexes governed by conditional probabilities: the HU:DNA complex.

Complexes of an 88 bp DNA and the HU protein were studied by both experimental and theoretical electrophoretic mobility-shift analyses. Experimental analysis defined the stoichiometry of binding and estimated an apparent intrinsic dissociation constant (Kd = 1 to 3 x 10(-7) M) for the HU:DNA complexes. The theory of conditional probabilities was applied to the binding of HU to DNA in order to fix the initial equilibrium composition of mixtures to be assayed theoretically by the mobility-shift procedure. Electrophoretic mobility-shift patterns were obtained by numerical solution of a set of simultaneous transport-reaction equations, in which the chemical kinetic term is formulated in terms of dissociation of the different DNA:HU complexes in gel cages. The computed patterns simulated the experimental patterns describing the titration of a fixed concentration of an 88 bp DNA fragment with dimeric HU. These insightful results provide guidelines for interpretation of the electrophoretic behavior of systems in which a ligand binds nonspecifically to DNA. In particular, the narrow unresolved zone observed both experimentally and theoretically beyond 50-60% saturation is a reaction zone characteristic of noncooperative ligand-binding governed by conditional probabilities. The discrepancy between the theoretically assigned and experimental values of the intrinsic binding constant is attributed to an HU-induced change in the conformation of DNA.

Bacterial Proteins

Effects of molecular crowding on protein self-association: a potential source of error in sedimentation coefficients obtained by zonal ultracentrifugation in a sucrose gradient.

Theoretical and experimental studies have illustrated a potential source of error in sedimentation coefficients obtained by sucrose density gradient centrifugation of proteins undergoing reversible self-association. The error stems from the excluded volume (molecular crowding) effect of the sucrose on the activity coefficients of monomeric and polymeric states. The consequent displacement of the equilibrium position in favor of polymeric state(s) is a function of sucrose concentration, and can therefore result in failure to detect the equilibrium coexistence of monomer if 5% sucrose suffices to displace the equilibrium completely toward dimer. In less extreme situations, it may result in the evaluation of an average sedimentation coefficient whose magnitude is a function of sucrose concentration and hence of the distance migrated into the sucrose gradient. These features are illustrated by the results of computer-simulated sedimentation of reversibly dimerizing systems in a sucrose gradient, and by conventional sedimentation velocity experiments on yeast enolase.

Centrifugation, Zonal

A CD and an NMR study of multiple bradykinin conformations in aqueous trifluoroethanol solutions.

CD and nmr studies have been carried out on aqueous trifluoroethanol (TFE) solutions of bradykinin (BK) and a bradykinin antagonist. The CD results exhibit a striking effect of TFE on the spectra of BK, with sequence Arg-Pro-Pro-Gly-Phe-Ser-Pro-Phe-Arg, and the BK antagonist, with sequence D-Arg-Arg-Pro-Hyp-Gly-Thi-D-Ser-D-Cpg-Cpg-Arg [where Hyp is 4-hydroxy-L-proline; Thi refers to beta-(2-thienyl)-L-alanine and Cpg refers to alpha-cyclopentylglycine). The effect of increasing concentration of TFE in water on the difference ellipticity at 222 nm was examined and showed that BK may be a mixture of at least two different conformers, one of which largely forms when the TFE concentration is increased beyond 80%. The linear extrapolation of 100% of the difference ellipticity of BK at low TFE concentrations yields a value in agreement with that shown by the BK antagonist, indicating that the conformation of BK at the lower TFE concentrations is similar to that of the BK antagonist. The conformational analysis was carried out using both one-dimensional and two-dimensional 1H-nmr techniques. The total correlation spectroscopy (TOCSY) spectrum of BK in a 60/40% (v/v) TFE/H2O solution at 10 degrees C and a nuclear Overhauser effect spectroscopy (NOESY) spectrum that shows only sequential H alpha (i)-NH(i + 1) or the H alpha (i)-H delta delta' (i + 1) NOEs indicate that the majority of the molecules adopt an all-trans extended conformation. The TOCSY for BK in the 95/5% (v/v) TFE/H2O solution shows that there are two major conformations in the solution with about equal population. The NOESY experiment shows two new important cross peaks for one conformation, namely Pro2 (alpha)-Pro3 (alpha) and the Pro2 (alpha)-Gly4(NH), indicating a cis Pro2-Pro3 bond and a type VI beta-turn between residues Arg1 and Gly4 involving cis proline at position 3, respectively. The low temperature coefficient of Gly4 for this conformation suggests the presence of an intramolecular hydrogen bond, therefore a type VIa beta-turn is present. The other conformation is all trans and extended. The BK antagonist shows difference CD spectra in TFE solutions referred to H2O that are superficially indicative of a beta-bend.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence

Theoretical studies on the mobility-shift behavior of binary protein-DNA complexes.

The theory of mass transport coupled to reversible interactions under chemical kinetic control forms the basis for computer simulation of the electrophoretic mobility-shift behavior of binary protein-DNA complexes. Several systems have been modeled in terms of either (i) specific binding of a protein molecule to a single site on the DNA molecule; (ii) cooperative binding to two or three sites; (iii) noncooperative binding to two sites, both of which bind protein with equal affinity; (iv) statistical binding to multiple sites having identical intrinsic binding constants; or (v) protein-induced DNA loop formation. Both models (iii) and (v) embody the concept of reversible isomerization of protein-DNA complexes. The resulting simulations have provided fundamental information concerning (i) the factors governing the electrophoretic persistence and separation of protein-DNA complexes; (ii) the shape of experimental mobility-shift patterns; (iii) the generation of the protein-DNA ladder upon titration, for example, of the 203-base pair operator with lac repressor; and (iv) the theoretical bases for quantitative interpretation of the patterns in terms of thermodynamic and kinetic parameters. The practical implications of these findings are discussed.

Antiporters

Conformational analysis of the type II and type III collagen alpha-1 chain C-telopeptides by 1H NMR and circular dichroism spectroscopy.

The type II and type III collagen alpha-1 chain C-telopeptides are a 27 mer with the sequence NAc-GPGIDMSAFAGLGPREKGPDPLQYMRA and a 22mer,NAc-GGGVASLGAGEKGPVGYGYEYR, respectively. Their conformations have been studied in CD3OH/H2O (80/20) solution by means of two-dimensional proton NMR and CD spectroscopy. Based on TOCSY and NOESY experiments, all resonances were assigned and the conformational properties were analyzed in terms of vicinal NH-H alpha coupling constants, sequential and medium range NOEs and amide proton temperature coefficients. The conformation of the type II C-telopeptide is essentially extended. Evidence from CD spectroscopy suggests that a very minor proportion of the peptide might be helical (ca.8%), but the NMR data show no evidence for a non-linear structure. The observation of reduced amide proton temperature dependence coefficients in certain sections of the molecule can, in view of the absence of any other supporting evidence, only be interpreted in terms of local shielding from solvent for sterical reasons (large hydrophobic side-chains). The conformation of the type III C-telopeptide is mostly extended except for a beta-turn ranging from Gly8 to Glu11, which is stabilized by a hydrogen-bond between NH of Glu11 and the carbonyl group of Gly8. The low temperature coefficient of NH(Glu11) and, in particular, the observation of a medium range NOE between H alpha (A9) and NH(E11) corroborate the existence of a beta-turn in this region. Although spectral overlap prevents a precise conclusion with regard to the type of beta-turn present, there is some evidence that it might be type II.

Amino Acid Sequence

The aggregation properties of some bradykinin analogs.

Bradykinin (BK) is a peptide hormone with sequence Arg1-Pro2-Pro3-Gly4-Phe5-Ser6-Pro7-Phe8-Arg9 and has been implicated in a multitude of pathophysiological processes such as the ability to lower systemic blood pressure and stimulate pain. Bulky, beta-branched D-aliphatic residues at position 7 combined with bulky L-aliphatic residues at position 8 have now been observed to yield strong antagonists. Nuclear magnetic resonance studies have been carried out on many of these molecules with a view to determining their solution conformations. However, two such analogs, namely DArg-[Hyp3, Thi5, DSer6, DCpg7, Cpg8]-BK [I] and DArg-[Hyp3, DSer6, DCpg7, Cpg8]-BK [II] (Cpg = alpha-cyclopentyl-glycine; Hyp = 4-hydroxy-L-proline, Thi = beta-(2-thienyl)-L-alanine), have exhibited an abnormal, non-linear temperature dependence for the amide NH proton of Cpg8. The NH of Arg9 also shows a slightly non-linear temperature dependence at higher temperatures above 25 degrees C. In addition, a very slow exchange rate for the NH protons of DCpg7, Cpg8 and Arg9 indicated aggregation of these two analogs, which was confirmed using the circular dichroism experiments.

Amino Acid Sequence