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R W Woody

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Circular dichroism.

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Circular Dichroism

Protein secondary structure from circular dichroism spectroscopy. Combining variable selection principle and cluster analysis with neural network, ridge regression and self-consistent methods.

Different approaches to improve the analysis of protein secondary structure from circular dichroism spectra are compared. Grouping proteins based on the similarity of their circular dichroism spectra, using cluster analysis methods, was utilized as a new way of implementing variable selection. The performance of three basic methods (neural networks, ridge regression and singular value decomposition) was evaluated in combination with three approaches to improve the predictions; namely, variable selection, cluster analysis and the self-consistent method. Cluster analysis performed on the basis set proteins resulted in three clusters, subanalyses of which provide a new way of performing variable selection. The neural network with two hidden layers performed better than that with one hidden layer and was combined with variable selection. Inclusion of the variable selection principle improved the performance of all three basic methods. While the neural network method performed slightly better than the other two methods at the basic level, the inclusion of variable selection led to similar performance indices for all three methods.

Circular Dichroism

Poly(pro)II helices in globular proteins: identification and circular dichroic analysis.

A method to identify poly(L-proline)-type (PII) conformation in crystal structures of globular proteins is presented. Short segments of PII structure were identified in globular protein structures, and these form a significant fraction of the residues which are not assigned to alpha-helix, beta-sheet, and beta-turns. The fractions of alpha-helix, beta-sheet, beta-turns, PII, and unordered, identified in conjunction with the Kabsch and Sander method [(1983) Biopolymers 22, 2577], were incorporated in the analysis of circular dichroism (CD) spectra of proteins. The separation of PII fraction from the fraction of residues not assigned to alpha-helix or beta-sheet or -turns resulted in a distinctive PII CD spectrum and an unusual CD spectrum corresponding to the residual unassigned structures. The quality of prediction of PII fraction from CD spectra of proteins was comparable to that of beta-sheet and -turns.

Circular Dichroism

Bacteriophage T7 RNA polymerase and its active-site mutants. Kinetic, spectroscopic and calorimetric characterization.

It has been demonstrated that the amino acids Asp537, Asp812, Lys631, His811 and Tyr639 are involved in bacteriophage T7 RNA polymerase catalysis. In the present paper, we report kinetic, spectroscopic and calorimetric characterization of the wild-type and mutant T7 RNA polymerases generated at these five loci (D537N, E; K631M, R; Y639F, S, A, W; H811Q, A; D812N, E). The wild-type enzyme has a substantial amount of secondary structure as determined by CD analysis (alpha-helix, 43%; beta-sheet, 14%; beta-turn, 25%; unordered, 18%). The CD spectra of 12 mutants at five loci are very similar to that of the wild-type, except for the mutant Y639W. Within experimental error, the thermal transition temperatures measured by CD and DSC as well as the lambda max values of the fluorescence spectra were the same for the wild-type and all of the mutants. Therefore, the overall folding and stability of the mutant enzymes are very similar to those of the wild-type enzyme, although small local conformational changes cannot be excluded. For the synthesis of the pentamer pppGGACU, the mutants D537E and D812E showed an approximately two- to threefold decrease in (kcat)app and an approximately two- to threefold increase in (Km)app, relative to the wild-type, in contrast to the mutants D537N and D812N which exhibited no detectable activity. The mutant K631R showed a sevenfold reduction in (kcat)app and a two- to threefold increase in (Km)app, supporting our earlier observation with the mutant K631M that Lys631 may be involved in phosphodiester bond formation. The mutant Y639S can synthesize the trimer GGA with an approximately 50-fold decrease in (kcat)app and a tenfold increase in (Km)app, relative to the wild-type, underlining the importance of the phenyl ring of Tyr639. The mutant H811A, in which the side-chain at position 811 is incapable of forming a hydrogen bond, can synthesize the trimer GGA with an approximately tenfold decrease in (kcat)app and an approximately 35-fold increase in (Km)app. Thus, either the hydrogen-bonding capacity of this residue is non-essential or some other group can functionally substitute for the His811 side-chain. The wild-type enzyme showed significant effects of the base position in the sequence on the apparent binding constants for the NTPs. The kinetics of GpG-primed trimer, tetramer and pentamer synthesis on three 22 bp templates were investigated for the wild-type and mutant enzymes with measurable activity.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence

Contributions of tryptophan side chains to the far-ultraviolet circular dichroism of proteins.

It has often been assumed that the role of aromatic side chains in the far-ultraviolet region of protein circular dichroism (CD) is negligible. However, some proteins have positive CD bands in the 220-230 nm region which are almost certainly due to aromatic side chains. The contributions to the CD of interactions between tryptophan side chains and the nearest neighbor peptide groups have been studied, focusing on the indole Bb transition which occurs near 220 nm. Calculations on idealized peptide conformations show that the CD depends strongly on both backbone and side-chain conformation. Because of the low symmetry of indole, rotation about the C beta C gamma bond (dihedral angle chi 2) by 180 degrees generally leads to large changes in the CD, often causing the Bb band to reverse sign. When side-chain conformational preferences are taken into account, there is no strong bias for either positive or negative Bb rotational strengths. The observation that simple tryptophan derivatives such as N-acetyl-L-tryptophan methylamide have positive CD near 220 nm implies either that these derivatives prefer the alpha R region over the beta region, or that there is little preference for chi 2 < 180 degrees over chi 2 > 180 degrees. Nearest-neighbor-only calculations on individual tryptophans in 15 globular proteins also reveal a small bias toward positive Bb bands. Rotational strengths of the Bb transition for some conformations can be as large as approximately 1.0 Debye-Bohr magnetons in magnitude, corresponding to maximum molar ellipticities greater than 10(5) deg cm2/dmol. Although a substantial amount of cancellation occurs in most of the examples considered here, such CD contributions could be significant, especially in proteins of low helix content.

Circular Dichroism

Calculation of the circular dichroism spectrum of cyclo-(L-tyr-L-tyr) based on a molecular dynamics simulation.

Theoretical calculations of CD spectra have generally assumed a single conformation, or a small number of conformers with Boltzmann averaging. Solvent effects on both the conformation and the CD have been neglected. In this work, we have calculated the CD spectrum of cyclo(L-Tyr-L-Tyr) in aqueous solution, taking dynamics and solvation into account. Starting geometries with chi 1 approximately 300 degrees or 60 degrees for both Tyr side chains were derived from MNDO/MOPAC, followed by energy minimization using GROMOS. After addition of 368 water molecules, the system was simulated for 1000 ps at 300 K using GROMOS. In addition to the starting conformer, two other conformers were observed during each simulation. However, each trajectory gave a distinct set of conformers. Rotational strengths were calculated for the cyclic dipeptide at each ps along the trajectories, using the matrix method. The CD spectra calculated from these rotational strengths were averaged over the trajectories. Agreement is very good for the strong negative band near 200 nm, while for the lower energy bands (near 230 and 280 nm), the signs are correct, but the magnitudes are too low. The spectrum calculated from a Boltzmann-weighted average over the in vacuo MNDO/MOPAC conformers was in poor agreement with experiment. Although the solvent did not significantly affect the rotational strength calculated for a given conformer, it is essential to include the solvent in the MD simulations because it affects the relative energies of the conformers and promotes transitions among them.

Chemical Phenomena

Contributions of tryptophan side chains to the circular dichroism of globular proteins: exciton couplets and coupled oscillators.

We have applied exciton theory to estimate the circular dichroism (CD) contribution of the Trp Bb transition to the far-UV circular dichroism of globular proteins. Strong exciton couplets are predicted for a number of proteins, including dihydrofolate reductase (DHFR), chymotrypsin and chymotrypsinogen. These predicted CD spectra are dominated by the contributions of the closest pair, W47-W74 in DHFR and W174-W215 in chymotrypsinogen. The sign and magnitude of the predicted couplets are consistent with experimental data for DHFR and its W74L mutant, and with the previously unexplained CD changes upon chymotrypsin activation. More extensive coupled-oscillator interactions among all aromatic and peptide chromophores are described for DHFR and barnase. The total far-UV CD spectra predicted for these proteins agree poorly with experiment, primarily owing to difficulties in the calculation of the peptide CD. Nevertheless, difference spectra calculated between the wild-type spectra and those of mutants in which individual aromatic residues are replaced with non-chromophoric side chains show satisfactory agreement with experiment in most cases.

Chymotrypsin

Optical activity of hemoproteins in the Soret region. Circular dichroism of the heme undecapeptide of cytochrome c in aqueous solution.

Different possible mechanism for generation of optical activity of hemoproteins in the Soret region are reconsidered. The heme undecapeptide of cytochrome c does not contain aromatic amino acid residues, so its considerable optical activity cannot be due to coupling of heme pi pi * transitions with those of aromatic residues. CD data for the heme undecapeptide and for ferrimyoglobin and some of their complexes with small molecules are presented and critically compared. Symmetrically coordinated imidazole complexes show rotational strengths of the same magnitude as those of corresponding nonsymmetrically coordinated compounds. Inherent chirality in the bound heme is inferred to be a significant source of optical activity in the heme undecapeptide. Theoretical calculations based upon a molecular dynamics simulation support this proposal. Coupled oscillator interactions with the peptide pi pi * transitions and with the high-energy transitions in the peptide groups and thioether sulfurs, as modeled by polarizabilities, also make significant contributions. These same mechanisms must also be considered in hemoproteins in general.

Animals

A self-consistent method for the analysis of protein secondary structure from circular dichroism.

A self-consistent procedure for estimating the secondary structure content from circular dichroism spectra of proteins is presented. In this method the spectrum of the protein to be analyzed is included in the basis set and an initial guess is made for the unknown structure as a first approximation. The resulting matrix equation is solved using the singular value decomposition algorithm and the initial guess is replaced by the solution. The process is repeated until self-consistency is attained. The best features of the variable selection and the locally linearized methods are incorporated in this procedure. We have applied this method to examine the inconsistencies in the CD data, to compare the predictions with different ranges and resolutions of the CD data, and to compare different assignments of secondary structures from X-ray structure analyses in the context of secondary structure predictions. The results are compared using the root mean square differences and correlation coefficients. The results obtained are as good as or better than the previous analyses. For most of the proteins considered the self-consistent solutions obtained with different initial guesses were similar. We find the Kabsch and Sander protein crystal structure analysis to be most suitable for our prediction method.

Circular Dichroism

Asp537, Asp812 are essential and Lys631, His811 are catalytically significant in bacteriophage T7 RNA polymerase activity.

To define catalytically essential residues of bacteriophage T7 RNA polymerase, we have generated five mutants of the polymerase, D537N, K631M, Y639F, H811Q and D812N, by site-directed mutagenesis and purified them to homogeneity. The choice of specific amino acids for mutagenesis was based upon photoaffinity-labeling studies with 8-azido-ATP and homology comparisons with the Klenow fragment and other DNA/RNA polymerases. Secondary structural analysis by circular dichroism indicates that the protein folding is intact in these mutants. The mutants D537N and D812N are totally inactive. The mutant K631M has 1% activity, confined to short oligonucleotide synthesis. The mutant H811Q has 25% activity for synthesis of both short and long oligonucleotides. The mutant Y639F retains full enzymatic activity although individual kinetic parameters are somewhat different. Kinetic parameters, (kcat)app and (Km)app for the nucleotides, reveal that the mutation of Lys to Met has a much more drastic effect on (kcat)app than on (Km)app, indicating the involvement of K631 primarily in phosphodiester bond formation. The mutation of His to Gln has effects on both (kcat)app and (Km)app; namely, three- to fivefold reduction in (kcat)app and two- to threefold increase in (Km)app, implying that His811 may be involved in both nucleotide binding and phosphodiester bond formation. The ability of the mutant T7 RNA polymerases to bind template has not been greatly impaired. We have shown that amino acids D537 and D812 are essential, that amino acids K631 and H811 play significant roles in catalysis, and that the active site of T7 RNA polymerase is composed of different regions of the polypeptide chain. Possible roles for these catalytically significant residues in the polymerase mechanism are discussed.

Aspartic Acid

Mapping of the active site of T7 RNA polymerase with 8-azidoATP.

The photoaffinity analog of ATP, 8-azidoATP, labels T7 RNA polymerase. Photoincorporation exhibits saturation behavior and is protected against by the substrate ATP. 8-AzidoATP is a competitive inhibitor of ATP incorporation with Ki approximately 40 microM. The photolabeled T7 RNA polymerase, following cyanogen bromide digestion, was analyzed by phenylboronate agarose column chromatography followed by reverse-phase high pressure liquid chromatography. Sequencing of the peptides labeled with radioactive photoprobe allowed the identification of three peptides, P314-M362 (I), L550-M666 (II), and F751-M861 (III). These peptides are in the proximity of the photoprobe 8-azidoATP and, therefore, expected to contain functionally significant residues and define an active site domain. These peptides (I and II) contain residues previously implicated in T7 RNA polymerase activity or show homology to active site regions of the Klenow fragment of DNA polymerase I (II and III).

Adenosine Triphosphate

Theoretical CD studies of polypeptide helices: examination of important electronic and geometric factors.

An improved model for calculating the CD of polypeptides has been developed. Excited state wavefunctions were derived from CNDO/S (complete neglect of differential overlap, spectroscopic) calculations on N-methylacetamide. Four discrete peptide-localized transitions were employed: pi 0 pi* (NV1), pi* + pi* (NV2), n pi*, and n' pi*. Inclusion of the pi + pi transition (lambda 0 = 140 nm) significantly improves the accuracy of the calculated CD spectra in the 180-250-nm region. Spectra were computed for various helical structures, including right-handed alpha-, alpha II-, omega-, pi-, 3(10-), and poly (proline) I-helices, and the left-handed poly (proline) II-helix. Sensitivity to changes in the peptide backbone geometry and chain length are examined. Electronic factors such as ground-state charge distribution, hybridization effects, and basis set deorthogonalization have been investigated. The nonconservative nature of the poly (Pro) I and II CD spectra is reproduced, and the helix band present in earlier exciton calculations on the alpha-helix has been diminished.

Circular Dichroism

The helix-coil transition in heterogeneous peptides with specific side-chain interactions: theory and comparison with CD spectral data.

Natural and synthetic peptides that contain detectable intramolecular alpha-helical structure in aqueous solution have been used to evaluate the helical propensities for the common amino acids. Experimental spectroscopic data must be fit to a model of the helix-coil transition in order to determine quantitative stability constants for each amino acid. We present here a statistical mechanical description of helix formation in peptides or protein fragments that takes into account multiple internal conformations, heterogeneity in the stabilizing effects of different side chains, and specific side-chain-side-chain interactions. The model enables one to calculate values of [theta]222 for a given peptide using the length dependence of the helix signal computed by a quantum mechanical treatment of the n pi * transition that dominates the 222-nm band. In addition, the helical probability at any residue in the chain is readily computed, and should prove useful as nmr spectral data become available. The free energy of specific side-chain interactions, including ion pair formation, can be evaluated. Application of the analysis to experimental data on a pair of isomeric peptides, only one of which contains ion pairs, indicates that forming a single glutamate-lysine ion pair stabilizes the alpha-helix by 0.50 kcal/mole in 10 mM sodium ion and pH 7. A survey of the CD data measured for a variety of model peptides is presented, indicating that a single set of s values and sigma constant can account for some but not all of the available results.

Amino Acid Sequence

The effect of conformation on the CD of interacting helices: a theoretical study of tropomyosin.

A recent report [M. E. Holtzer, et al. (1988) Biophysics Journal, 53, 96a] of the anomalous CD spectrum of the tropomyosin (TM) fragment 11TM127 motivated us to model the system as two 21-residue alpha-helices distorted to a coiled-coil conformation. We used strong-coupling exciton theory to model the optical properties of the system. Two backbone amide excited states (n pi* and pi pi*) were considered, as well as four excited states (Lb, La, Bb, Ba) for the phenolic side chain. We calculated the effect of superhelix formation on the backbone CD spectrum. The decrease in molar ellipticity of the alpha-helix parallel-polarized transition at 208 nm was found to be a simple function of superhelix tilt angle. We then modeled a coiled coil (radius = 5.5 A, pitch = -140 A) with one aromatic ring per superhelix. Steric interactions between aromatic side chains in a coiled coil were calculated as a function of side-chain conformation and heptet position. Steric interactions between phenolic rings will be significant for heptet positions a and d, but not for positions b, c, e, f, or g. We calculated the phenolic Lb transition rotational strength as a function of position within the heptet repeats, and of all possible side-chain dihedral angles, chi 1 and chi 2. When tyrosines were placed at heptet positions b, c, e, f, or g, the rotational-strength surface was nearly identical to that of a single tyrosine in an undistorted helix. In contrast, the rotational-strength surface for tyrosines in heptet positions a or d showed substantial intertyrosine coupling components. The rotational-strength surfaces for the three types of heptet positions (position a, position d, and the others) allowed an interpretation of the aromatic CD spectra of TM and its fragments. It was predicted that the three types of heptet positions will be spectroscopically distinguishable.

Circular Dichroism

Theoretical study of the contribution of aromatic side chains to the circular dichroism of basic bovine pancreatic trypsin inhibitor.

Circular dichroism (CD) spectroscopy is frequently employed to determine the secondary structure composition of a protein. However, this assumes that the far-UV region of the spectrum, which is used for these analyses, is due only to contributions from the polypeptide backbone. Basic bovine pancreatic trypsin inhibitor (BPTI) possesses an unusual far-UV CD spectrum, which has made such an analysis difficult. One possible reason for the discrepancy is that other chromophores, such as the aromatic side chains (four tyrosines, four phenylalanines), might be responsible. The CD spectrum of BPTI was calculated by employing a variation of the matrix method. Including only the peptide backbone gave poor agreement between theory and experiment. This was shown to be independent of the quality of the calculation performed. Subsequent inclusion of tyrosine contributions did little to improve the fit. However, further inclusion of the phenylalanine chromophores provided a good fit between the calculated and experimental far-UV spectrum. The important contributions arise from the cluster of aromatic amino acids formed by two tyrosines (Tyr21 and Tyr23) and three phenylalanines (Phe22, Phe4, and Phe45). Consideration of both types of side chains and the entire peptide backbone is essential to produce an accurate description of the CD curve. Overall, these results indicate that contributions from aromatic amino acids can significantly perturb the far-UV CD spectrum of a protein, making secondary structure analysis difficult. This is particularly true in systems like BPTI, with low amounts of alpha-helical structure and clusters of aromatic amino acids.

Animals

Comparison of the secondary structures of human class I and class II major histocompatibility complex antigens by Fourier transform infrared and circular dichroism spectroscopy.

We have examined the secondary structures of human class I and class II histocompatibility antigens in solution by Fourier transform infrared spectroscopy and circular dichroism in order to compare the relative amounts of alpha-helix, beta-sheet, and other structures, which are crucial elements in the comparison of the protein structures. Quantitation of infrared spectra of papain-solubilized HLA-A2, HLA-B7, and DR1 in phosphate buffer gave alpha-helix contents of 17%, 8%, and 10% and beta-sheet contents of 41%, 48%, and 53%, respectively. By circular dichroism, papain-solubilized HLA-A2, HLA-B7, and DR1 were also found to have comparable alpha-helix contents (e.g., 8%, 20%, and 17%, respectively). Circular dichroism analysis for beta-sheet gave 29% for papain-solubilized HLA-B7 and 42% for papain-solubilized DR1. The value for papain-solubilized HLA-A2 (74%) was anomalous. It is proposed that Trp-107 of HLA-A2, missing in both HLA-B7 and DR1, may be responsible for much of the anomaly. Due to the uncertainties inherent in quantitation of the amounts of secondary structures by both spectral methods, the differences in the contents of alpha-helix and beta-sheet in the three proteins are not considered significant. However, differences in the nature of the beta-sheet structures are suggested by infrared spectroscopy. These results provide physical evidence for an overall structure of class II antigens modeled on that of class I antigens.

Buffers

Spectroscopic analysis of DNA base-pair opening by Escherichia coli RNA polymerase. Temperature and ionic strength effects.

The interaction of Escherichia coli RNA polymerase with poly[d(A-T)] and poly[d-(I-C)] was studied by difference absorption spectroscopy at temperatures, from 5 to 45 degrees C in the absence and presence of Mg2+. The effect of KCl concentration, at a fixed temperature, was studied from 12.5 to 400 mM. Difference absorption experiments permitted calculation of the extent of DNA opening induced by RNA polymerase and estimation of the equilibrium constant associated with the isomerization from a closed to an open RNA polymerase-DNA complex. delta H0 and delta S0 for the closed-to-open transition with poly[d(A-T)] or poly[d(I-C)] complexed with RNA polymerase are significantly lower than the values associated with the helix-to-coil transition for the free polynucleotides. For the RNA polymerase complexes with poly[d(A-T)] and poly[d(I-C)] in 50 mM KCl, delta H0 approximately 15-16 kcal/mol (63-67 kJ/mol) and delta S0 approximately 50-57 cal/K per mol (209-239 J/K per mol). The presence of Mg2+ does not change these parameters appreciably for the RNA polymerase-poly[d(A-T)] complex, but for the RNA polymerase-poly[d(I-C)] complex in the presence of Mg2+, the delta H0 and delta S0 values are larger and temperature-dependent, with delta H0 approximately 22 kcal/mol (92 kJ/mol) and delta S0 approximately 72 cal/K per mol (approx. 300 J/K per mol) at 25 degrees C, and delta Cp0 approximately 2 kcal/K per mol (approx. 8.3 kJ/K per mol). The circular dichroism (CD) changes observed for helix opening induced by RNA polymerase are qualitatively consistent with the thermally induced changes observed for the free polynucleotides, supporting the difference absorption method. The salt-dependent studies indicate that two monovalent cations are released upon helix opening. For poly[d(A-T)], the temperature-dependence of enzyme activity correlates well with the helix opening, implying this step to be the rate-determining step. In the case of poly[d(I-C)], the same is not true, and so the rate-determining step must be a process subsequent to helix opening.

Base Composition

Characterization of a photoaffinity analog of UTP, 5-azido-UTP for analysis of the substrate binding site on E. coli RNA polymerase.

The substrate binding site on E. coli RNA polymerase was investigated by photoaffinity labeling with a photoaffinity analog of UTP, 5-azido-UTP. We have established that 5-azido-UTP is a substrate for RNA polymerase by specific transcription on 229 bp DNA containing the gene II promoter of M13 phage. Analysis of the initial rate of RNA synthesis gives Km(5-azido-UTP) approximately 80 microM. Photolabeling with varying concentrations of 5-azido-UTP follows a saturation curve with the midpoint occurring at a 5-azido-UTP concentration of 65 microM near to the Km obtained by kinetic analysis. 5-Azido-UTP photolabels the beta', beta, and sigma subunits to about the same extent, both in the presence (33, 31, and 36%) and absence (35, 30 and 35%) of DNA. This labeling pattern is somewhat different from that obtained with 8-azido-ATP (beta' greater than sigma much greater than beta greater than alpha).

Affinity Labels