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The dimerization of ferrihaems. I. The effect of buffer ions and specific cations on deuteroferrihaem dimerization.

The dimerization of dueteroferrihaem in aqueous solution has been investigated using a parameter, named the dimerization index (Robs). This is defined as the ratio of extinction coefficients at wavelengths corresponding to Soret band maxima for the monomeric and dimeric species, respectively. For solutions containing mainly monomeric species, Robs greater than 2, whereas for solutions containing mainly dimeric species Robs less than 1. A computer programme has been applied to determine values of the dimerization constant, K, defined as: K = [dimer] [H+]/[monomer]2. Phosphate buffer anions and Tris . HCl buffer enhanced dimerization. Monovalent and divalent cations also increased dimerization, but in a specific manner. The magnitudes of their effects increased in the order K+ less than Na+ less than Li+ less than Sr2+ less than Mg2+ approximately or equal to Ca2+. Values of K were determined for several concentrations of Na+ and Sr2+. These data are interpreted in terms of a stabilization of the ferrihaem dimer by the formation of ion triplets with the added cation 'sandwiched' between carboxyl residues of the adjacent ferrihaem monomeric units. General guidelines are recommended for the choice of conditions which minimize dimerization.

Buffers

The dimerization of ferrihaems. III. Equilibrium and kinetic studies on the dimerization of coproferrihaem.

Spectrophotometric studies on the behaviour of coproferrihaem in aqueous solution showed that, in the pH range 6.66--8.04, a dimerization process occurs according to the equation 2 monomer K in equilibrium dimer + H+ The value of K, the pH-independent dimerization constant, was found to be 2.10 . 10(-3), signifying that coproferrihaem shows the least tendency to dimerize of any ferrihaem so far investigated. Forward and reverse rate constants for the dimerization process have been determined by the temperature-jump method. The results suggest that the cation-bridging between carboxyl residues, postulated for the dimers of the dicarboxylic ferrihaems, cannot occur between the additional carboxyl residues of coproferrihaem and that the increased negative charge may cause destabiliztion of the coproferrihaem dimer by repulsion effects.

Chemical Phenomena

Mathematical analysis of ligand-induced monomerization and dimerization in the monomer dimer equilibrium of proteins. Application to D-amino acid oxidase.

We have mathematically analyzed ligand-induced monomerization and dimerization in a protein monomer-dimer equilibrium system, in which the monomer has one and the dimer two binding sites. These dimer sites have the same binding constants for the first ligand but may cooperatively interact when one of them is occupied by a ligand molecule. In this system, the apparent dimerization constant and the apparent molecular weight are functions of free ligand concentration, and depend on the intrinsic binding constants of the ligand molecule to the monomer and the dimer. The behavior of these functions is classified into 17 cases according to the values of the three intrinsic binding constants, and some calculated examples are shown graphically for selected parameters. The theory was also applied to D-amino acid oxidase [EC 1.4.3.3], a flavoprotein, and the pH dependence of the apparent dimerization constant and the apparent molecular weight in the presence of ligand, p-aminobenzoate, were studied theoretically using parameters obtained in our previous experiments (5).

4-Aminobenzoic Acid

The dimerization of ferrihaems. II. Equilibrium and kinetic studies of mesoferrihaem dimerization.

Spectrophotometric data have been determined for mesoferrihaem at several pH values and over a range of concentration covering four orders of magnitude. The data reveal a dimerization process according to the equation 2 monomer in equilibrium dimer + H+, analogous to earlier findings for deuteroferrihaem and protoferrihaem. The value of K (defined as K = [dimer] [H+]/[monomer]2) was found to be 6.92.10(-2). This is close to the value for deuteroferrihaem but much less than that for protoferrihaem. This is interpreted in terms of possible additional bonding between the delocalized electron systems in protoferrihaem dimers relative to those of mesoferrihaem and deuteroferrihaem. Rate constants for dimerization were determined by temperature-jump spectrophotometry. The pH dependence of the rate constants is explained in terms of two distinct pathways for the dimerization process. These involve either direct reaction between two undissociated monomer molecules or alternatively an initial acid dissociation of a monomer molecule followed by reaction between an undissociated and dissociated molecule.

Chemical Phenomena

A dimer--dimer binding region in beta-galactosidase.

alpha Complementation in beta-galactosidase is the restoration of enzyme activity by addition of the alpha donor CNBr2, from amino acid residues 3--92 of the polypeptide, to inactive M15 protein from the lacZ deletion mutant strain M15. M15 protein lacks residues 11--41 and is a dimer; the active complex, like native beta-galactosidase, is tetrameric [Langley, K. E., & Zabin, I. (1976) Biochemistry 15, 4866--4875]. A dimer--dimer binding region in beta-galactosidase has been identified by proteolytic and immunologic studies of alpha-complementation. Proteolytic experiments were carried out with trypsin. Treatment of native beta-galactosidase with trypsin, followed by reaction of the mixture with cyanogen bromide, yields intact CNBr2 as measured by its ability to complement M15 protein. Active CNBr2 is not obtained when urea-denatured beta-galactosidase is treated in the same way. Therefore the segment corresponding to CNBr2 is apparently buried within the folded protein. Immunologic experiments were carried out with antibodies against CNBr2, tryptic peptide T8 (residues 60--140), and CNBr3 (residues 93--187). Anti-CNBr2 and anti-T8 bind to M15 protein but not to beta-galactosidase, indicating that this area is exposed in the dimer. Anti CNBr2, but not anti-T8 or anti-CNBr3, inhibits the formation of alpha-complemented enzyme. These results indicate that an early part of the sequence, within the segment corresponding to CNBr2, is involved in dimer--dimer interaction.

Antibodies

Tetramer-dimer dissociation in homoglobin and the Bohr effect.

The pH dependence of the apparent tetramer to dimer dissociation constant has been determined at 20 degrees for both oxy- and deoxyhemoglobins A and Kansas. These measurements were made by three different procedures: gel chromatography, sedimentation velocity, and kinetic methods in either of three buffer systems: 0.05 M cacodylate, Tris, or glycine with 1 mM EDTA and 0.1 M NaCl between pH 6.5 and 11. The tetramer-dimer dissociation constant of human oxyhemoglobin A decreases from about 3.2 X 10(-6) M at pH 6.0 to about 3.2 X 10(-8) M at pH 8.5. The slope of this line indicates that the dissociation of tetramer to dimer is accompanied by the uptake of about 0.6 protons per mol of tetramer in this region. The corresponding dissociation constant for deoxyhemoglobin in the same pH region increases apparently almost linearly from 1.0 x 10(-12) M at pH 6.5 to about 1.0 x 10(-5) M at pH 11. To dimer is associated with the release of about 1.6 protons per mol of tetramer. Comparison of these data with the known proton release accompanying the oxygenation of tetramers confirms that the pH dependence of oxygen binding by dimers must be very small. The present data predict that the overall proton release or uptake per oxygen bound by dimer should be less than 0.1. The tetramer-dimer dissociation equilibria of oxy- and deoxyhemoglobins above pH 8.5 have identical pH dependences. In this range the dissociation constant of deoxy-Hb is about one-tenth that of oxyhemoglobin. Human oxyhemoglobin Kansas is known to have an enhanced tetramer-dimer dissociation compared with that of hemoglobin A. Below pH 8.5 the tetramer-dimer dissociation constant of Hb Kansas is about 400 times greater than that of HbA in the absence of phosphate buffers. In contrast, the tetramer-dimer dissociation constants of deoxyhemoglobins A and Kansas appear to be identical. These findings are consistent with previous structural observations on these hemoglobins. The data on the tetramer-dimer dissociation of human hemoglobin were used to calculate the total free energy of binding of oxygen to the tetramer and the median oxygen pressure on the basis of fundamental linkage relations and a pH-independent estimate of the total free energy of binding oxygen to dimer. Simulated oxygen binding curves were generated with the equations of Ackers and Halvorson (Ackers, G. K., and Halvorson, H. (1974) Proc. Natl. Acad. Sci. U.S.A. 71, 4312-4316) by making two assumptions: (a) that the dimers are noncooperative and pH-independent in O2 binding and (b) that the distribution of cooperative energy in the oxygenation of tetramers is independent of pH. We have compared these simulations with experimental data obtained at low protein concentrations (30 to 124 muM heme) to show that the variation in oxygen affinity with pH can be described in terms of the subunit equilibria. We conclude that an accurate analysis of the contributions of individual oxygen binding steps to the Bohr effect cannot be made without considering the contributions of the dimers to oxygen binding...

Hemoglobins

Monomer-dimer equilibria of a Bence Jones protein and its variable fragment.

The circular dichroic (CD) spectra of a type lambda Bence Jones protein (Tod), its variable (VL) fragment, and the constant (CL) fragment of a type lambda protein (Nag) were measured under various conditions. In the pH region from 5.5 to 7.5, the CD spectra of Tod protein with intact interchain disulfide bond (L(SS)) and and CL did not change with pH, while the spectra of Tod protein in which the interchain disulfide bond had been reduced and alkylated (L(RA)) and VL did not change with pH. The dimerization reactions of L(RA) and VL were studied by following the CD change with protein concentration. The CD spectrum of CL did not change with the protein concentration. The dimerization constant for L(RA) was 4 X 10(4) M-1 at at pH 7.5 and 25 degrees C, which was smaller than that for VL (1 X 10(5) M-1). The ellipticity at 278 nm for the L(RA) dimer was different from that for the L(SS) dimer and changed with pH. These findings indicate that the L(RA) dimer and L(SS) dimer have different conformations. The differences in the conformation and L-L interaction between the L(RA) dimer and L(SS) dimer are discussed on the basis of the conformations of VL and CL and the interactions between the paired domains.

Alkylation

Early Events in β2AR Dimer Dynamics Mediated by Activation-Related Microswitches.

G-Protein-Coupled Receptors (GPCRs) make up around 3-4% of the human genome and are the targets of one-third of FDA-approved drugs. GPCRs typically exist as monomers but also aggregate to form higher-order oligomers, including dimers. β2AR, a pharmacologically relevant GPCR, is known to be targeted for the treatment of asthma and cardiovascular diseases. The activation of β2AR at the dimer level remains under-explored. In the current study, molecular dynamics (MD) simulations have been performed to understand activation-related structural changes in β2AR at the dimer level. The transition from inactive to active and vice versa has been studied by starting the simulations in the apo, agonist-bound, and inverse agonist-bound β2AR dimers for PDB ID: 2RH1 and PDB ID: 3P0G, respectively. A cumulative total of around 21-μs simulations were performed. Residue-based distances, RMSD, and PCA calculations suggested that either of the one monomer attained activation-related features for the apo and agonist-bound β2AR dimers. The TM5 and TM6 helices within the two monomers were observed to be in significant variation in all the simulations. TM5 bulge and proximity of TM2 and TM7 helices may be contributing to one of the early events in activation. The dimeric interface between TM1 and helix 8 were observed to be well maintained in the apo and agonist-bound simulations. The presence of inverse agonists favored inactive features in both the monomers. These key features of activation known for monomers were observed to have an impact on β2AR dimers, thereby providing an insight into the oligomerization mechanism of GPCRs.

Receptors, Adrenergic, beta-2

Pyrimidine dimer excision in a Bacillus subtilis Uvr- mutant.

A technique which allows the measurement of small numbers of pyrimidine dimers in the deoxyribonucleic acid (DNA) of cells of Bacillus subtilis irradiated with ultraviolet light has been used to show that a strain mutant at the uvr-1 locus is able to excise pyrimidine dimers. Excision repair in this strain was slow, but incision may not be rate limiting because single-strand breaks in DNA accumulate under some conditions. Excision repair probably accounted for a liquid-holding recovery previously reported to occur in this strain. Recombinational exchange of pyrimidine dimers into newly replicated DNA was readily detected in uvr-1 cells, but this exchange did not account for more than a minor fraction of the dimers removed from parental DNA. Excision repair in the uvr-1 strain was inhibited by a drug which complexes DNA polymerase III with DNA gaps. This inhibition may be limited to a number of sites equal to the number of DNA polymerase III molecules, and it is inferred that large gaps are produced by excision of dimers. Because the uvr-1 mutation specifically interferes with excision of dimers at incision sites, it is concluded that the uvr-1 gene product may be an exonuclease which is essential for efficient dimer excision.

Bacillus subtilis

Effect of interchain disulfide bond on hapten binding properties of light chain dimer of protein 315.

The hapten binding characteristics of the covalent light chain dimer, derived from the murine IgA secreted by plasmacytoma MOPC-315, to two nitroaromatic compounds, epsilon-N-(2,4-dinitrophenyl)-L-lysine and 4-(alpha-N-alanine)-m-nitrobenz-2-oxa-1,3-diazole, were investigated by differential spectroscopic titrations. The binding curves for both haptens were found to display sigmoidity similar to that reported earlier for the reduced and alkylated dimer held together by noncovalent bonds only. However, the presence of the interchain disulfide bond in the covalent dimer was found to cause marked changes in its binding properties. The data, like those obtained for the noncovalent dimer, fit the allosteric model of Monod, Wyman, and Changeux in which binding of the first hapten to the dimer causes a conversion of both sites of the protein molecule from a lower to a higher affinity conformation. However, the binding parameters show that both the affinity and the positive cooperativity in the interaction between haptens and the covalent dimer are significantly enhanced. The differences in the parameters of the binding and of the allosteric transition caused by the presence of the interchain disulfide bond demonstrate the existence of longitudinal interactions in immunoglobulin derivatives. These properties of the light chain dimer make it a potential model for the receptors present on thymus-derived lymphocytes.

Allosteric Regulation

Interaction of the 5'-ends of 28S RNA in dimerization of hamster ribosomes.

Free ribosomes extracted from hamster cells and 28S RNA purified from these ribosomes are known to form dimers. We find that spleen phosphodiesterase inhibits ribosomal dimer formation, but only when a free 5'-hydroxyl end group, produced by the action of alkaline phosphatase, is present. Hence, formation of dimer ribosomes probably involves interaction at or near the phosphorylated 5'-ends of 28S RNA. Dimer RNA molecules show a modal length, when measured on electrom micrographs, of 2.1 mum, which is about double the length of 28S RNA. Electron micrographs of 115S dimer ribosomes often show profiles consistent with our interpretation that in dimers the 28S RNA chains are loosely linked by their 5'-ends.

Animals

Mechanisms of enhanced or impaired DNA target selectivity driven by protein dimerization.

Successful DNA transcription demands coordination between proteins that bind DNA while simultaneously binding to one another to form dimers or higher-order complexes. For proteins with numerous DNA targets throughout the genome, measurements that report on their dwell time or occupancy thus represent a convolution over a population interacting with specific DNA, nonspecific DNA, or protein partners on DNA. Dimerization is known to add contacts that can help a single protein to stably bind DNA. However, we show here that dimerization can also impair measured dwell times and occupancy on target sequences because the population redistributes across DNA. We combine mass-action kinetic models of pairwise reversible reactions between proteins and DNA with theory and spatial stochastic simulations to isolate the role of dimerization on observed DNA dwell times, occupancy, and spatial distribution of proteins on DNA. Three key themes emerge: (i) Protein-protein interactions, in addition to protein-DNA interactions, can localize a protein to DNA, and relative binding rates can thus widely tune dwell times. (ii) Dimensional reduction achieved through nonspecific binding and subsequent 1D diffusion controls the order-of-magnitude of enhancements despite nucleosome barriers. (iii) Dimerization enhances selectivity for locally clustered targets and often impairs binding to widely-spaced targets by sequestration. Compared with ChIP-seq data, our model explains how the distribution of the essential GAF protein throughout the genome is highly selective for clustered targets due to protein interactions. This model framework predicts when even weak dimerization can redistribute and stabilize proteins on DNA as a necessary part of transcription.

DNA binding

The use of hybrid molecules in a study of the equilibrium between nerve growth factor monomers and dimers.

The major protein in beta nerve growth factor preparations, beta1NGF, is a dimer in which both peptide chains have COOH-terminal arginine residues. Digestion of beta1NGF with carboxypeptidase B produced a dimer, beta3NGF, in which both chains lack these terminal arginine residues. Exposure of mixtures of beta1 and beta3NGF dimers to 8 M urea to produce monomers, followed by removal of urea to allow recombination, resulted in the formation of the hybrid beta2NGF, comprising one arginine-containing and one arginine-less chain, as well as the parent dimers. The amount of the three dimers formed was close to that expected from random association of monomers. Hybrid beta2NGF was also formed from mixtures of beta1 and beta3NGF where incubated at pH 2.6 to 4.5. The formation of beta2NGF has a half-time of 6 h at pH 4.0 and 4 degrees C. Its rate of formation decreased above pH 4.5, becoming minimal between pH 9.5 and pH 10.5, and increased with increasing temperature. The amount of beta2NGF formed was determined by the lowest pH to which the parent mixture was exposed, irrespective of its prior history. These data suggest that the hybrid is formed by the same mechanism in the absence and presence of the urea step. An approximate value for Kd, the equilibrium dissociation constant of the dimer equilibrium monomer equilibrium was derived. Its value was 3 - 10(-10) M at pH 4.0 and 4 degrees C. The alpha-subunit of 7S NGF decreased the rate of formation of beta2NGF not only at pHs where an alphabeta complex is stable, but also at an acid pH where no complex formation is observed by sedimentation analysis, suggesting that the present methodology offers a more sensitive probe of subunit interactions. In contrast, the gamma subunit and a number of indifferent proteins had little or no effect on the appearance of beta2NGF at the pHs studied.

Animals

Photodissociable dimer reduction products of 2-thiopyrimidine derivatives.

Both 4,6-dimethyl-2-thipyrimidine and its 1-methyl derivative undergo polarographic reduction in aqueous medium, via a 1e/1H+ reduction to a free radical which rapidly dimerizes to products isolates and identified as 4,4'-bis-(4,6-dimethyl-3,4-dihydropyrimidin-2-thione) and the corresponding 1-methyl dimer. The dimers may be oxidized electrolytically to regenerate the parent monomers. Both dimers also undergo photodissociation to quantitatively regenerate the parent monomers, in high quantum yield, 0.23 and 0.35 M/Einstein. The correlation between electrochemical and photochemical reductions of 2-thiopyrimidines are discussed, as well as the significance of the dimer photodissociation reactions in relation to nucleic acid photochemistry.

Electrolysis

Anti-V region framework antibodies affect the ligand binding of VL dimer.

The effect of antibodies to the light chain variable region (VL) of protein MOPC-315 (alpha, lambda 2), on the binding of hapten by VL315 dimer or Fv315 (VL + VH) was studied by equilibrium dialysis. Anti-VL did not change the binding properties of Fv but affected the binding properties of VL dimer. At pH 5, the binding properties of VL in the presence or absence of anti-VL were the same, whereas at pH 8, anti-VL reduced the number of ligands bound to VL from two to one. It has previously been shown that VL dimer binds one ligand at pH 5 and two ligands at pH 8, and that VL conformation at pH 5 is tighter. Hence, our results suggest that anti-VL tightens the conformation of VL dimer at pH 8.0 such that it can bind only one ligend. Since Fv is not affected by anti-VL, the results indicate that a combining site made of two identical chains (VL dimer) can undergo a conformational change upon interaction with its antibody. Such conformational change can indirectly affect the binding properties.

Animals