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Biomedical subjects

O B Ptitsyn

Publications and source records attributed to O B Ptitsyn.

At least 19 recordsLinked to original sources

'All-or-none' mechanism of the molten globule unfolding.

The Gdm-HCl-induced unfolding of bovine carbonic anhydrase B and S. aureus beta-lactamase was studied at 4 degrees C by a variety of methods. With the use of FPLC it has been shown that within the transition from the molten globule to the unfolded state the distribution function of molecular dimensions is bimodal. This means that equilibrium intermediates between the molten globule and the unfolded states are absent, i.e. the molten globule unfolding follows the 'all-or-none' mechanism.

Carbonic Anhydrases

Retinol-binding protein is in the molten globule state at low pH.

Using far- and near-UV circular dichroism, viscosity, tryptophan fluorescence, NMR spectra, binding of a hydrophobic probe, and microcalorimetry, we have shown that the apo form of human retinol-binding protein (RBP) at neutral pH is in a rigid state with properties similar to those of holo-RBP. On the contrary, at acidic pH apo-RBP is in the molten globule state which has been earlier revealed for a number of proteins under mild denaturing conditions. We have also shown that, at equilibrium, the pH-induced retinol release from holo-RBP parallels denaturation of the apoprotein. These findings are consistent with our hypothesis that the transformation of RBP into the molten globule state is involved in the mechanism whereby retinol is delivered to target cells. In particular, a local acidic pH near the membrane surface of target cells might cause the transition of RBP to the molten globule state as well as the release of retinol.

Apoproteins

De novo design, synthesis and study of albebetin, a polypeptide with a predetermined three-dimensional structure. Probing the structure at the nanogram level.

The de novo polypeptide named albebetin was designed to form the tertiary fold that has not yet been observed in natural proteins. The design was based on the molecular theory of protein structures. The gene coding for this polypeptide was chemically synthesized. For the initial characterization of a protein structure, a new approach has been developed that uses only nanogram amounts of a polypeptide without its previous purification. This approach includes the biosynthesis of radiolabeled protein in a cell-free translation system with subsequent analysis of its compactness and structure by size-exclusion chromatography, urea-gradient electrophoresis and limited proteolysis. According to all tests used, albebetin has a compact stable structure.

Amino Acid Sequence

How does protein synthesis give rise to the 3D-structure?

The recent experimental data on stages and kinetic intermediates in protein folding are reviewed. It is emphasized that these data are consistent with the 'framework model' proposed by the author in 1973. The model implies that protein folds by stage mechanism (secondary structure - molten) globule state - native state) in such a way that the results of previous stages are not reconsidered in subsequent ones. Arguments are presented that both these hypotheses and available experimental data do not contradict the assumption that native structures of at least small proteins are nevertheless under thermodynamic rather than kinetic control i.e. correspond to global minima of free energy.

Kinetics

Physical reasons for secondary structure stability: alpha-helices in short peptides.

It was recently found that some short peptides (including C- and S-peptide fragments of RNase A) can have considerable helicity in solution, which was considered to be surprising. Does the observed helicity require a new explanation, or is it consistent with previous understanding? In this work we show that this helicity is consistent with the physical theory of secondary structure based on an extension of the conventional Zimm-Bragg model. Without any special modifications, this theory explains reasonably well almost all the experimentally observed dependencies of helicity on pH, temperature, and amino acid replacements. We conclude that the observed "general level" of helicity of C- and S-peptides (5-30% at room temperature and 10-50% near 0 degrees C) is "normal" for short peptides consisting mainly of helix-forming and helix-indifferent residues. The helicity is modified by a multitude of weak specific side chain interactions, many of which are taken into account by the present theory; some discrepancies between the theory and experiment can be explained by weak side-chain-side chain interactions that were neglected. A reasonable coincidence of the theory with experiment suggests that it had been used to investigate the role of local interactions in the formation of alpha-helical "embryos" in unfolded protein chains.

Amino Acid Sequence

An early immunoreactive folding intermediate of the tryptophan synthease beta 2 subunit is a 'molten globule'.

The refolding kinetics of the tryptophan synthase beta 2 subunit have been investigated by circular dichroism (CD) and binding of a fluorescent hydrophobic probe (ANS), using the stopped-flow technique. The kinetics of regain of the native far UV CD signal show that, upon refolding of urea denatured beta 2, more than half of the protein secondary structure is formed within the dead time of the CD stopped-flow apparatus (0.013 s). On the other hand, upon refolding of guanidine unfolded beta 2, the fluorescence of ANS passes through a maximum after about 1 s and then 'slowly' decreases. These results show the accumulation, in the 1-10 s time range, of an early transient folding intermediate which has a pronounced secondary structure and a high affinity for ANS. In this time range, the near UV CD remains very low. This transient intermediate thus appears to have all the characteristics of the 'molten globule' state [(1987) FEBS Lett. 224, 9-13]. Moreover, by comparing the intrinsic time of the disappearance of this transient intermediate (t1/2 35 s) with the time of formation of the previously characterized [(1988) Biochemistry 27, 7633-7640] early immunoreactive intermediate recognized by a monoclonal antibody (t1/2 12 s), it is shown that this native-like epitope forms within the 'molten globule', before the tight packing of the protein side chains.

Circular Dichroism

Evidence for a molten globule state as a general intermediate in protein folding.

The folding of globular proteins occurs through intermediate states whose characterisation provides information about the mechanism of folding. A major class of intermediate states is the compact 'molten globule', whose characteristics have been studied intensively in those conditions in which it is stable (at acid pH, high temperatures and intermediate concentrations of strong denaturants). In studies involving bovine carbonic anhydrase, human alpha-lact-albumin, bovine beta-lactoglobulin, yeast phosphoglycerate kinase, beta-lactamase from Staphylococcus aureus and recombinant human interleukin 1 beta, we have demonstrated that a transient intermediate which accumulates during refolding is compact and has the properties of the 'molten globule' state. We show that it is formed within 0.1-0.2 s. These proteins belong to different structural types (beta, alpha + beta and alpha/beta), with and without disulphide bridges and they include proteins with quite different times of complete folding (from seconds to decades of minutes). We propose that the formation of the transient molten globule state occurs early on the pathway of folding of all globular proteins.

Fluorescence

Correlation between enzyme activity and hinge-bending domain displacement in 3-phosphoglycerate kinase.

Diffuse X-ray-scattering data give evidence for large-scale structural change in pig muscle 3-phosphoglycerate kinase upon substrate binding. Simultaneous binding of 3-phosphoglycerate and MgATP either to the unmodified enzyme or to its active methylated derivative leads to about an 0.1-nm decrease in radius of gyration. These data coincide well with the previous data for yeast 3-phosphoglycerate kinase. When, instead of methylation, the two reactive thiol groups of pig muscle 3-phosphoglycerate kinase are carboxamidomethylated, the enzyme becomes inactive and the radii of gyration of its 'apo' and 'holo' forms do not differ within limits of experimental error. Thus, a correlation exists between the activity of 3-phosphoglycerate kinase and its substrate-induced large-scale conformational change. This correlation is a strong argument in favor of the functional importance of domain locking in the reaction catalyzed by 3-phosphoglycerate kinase.

Alkylation

Prediction of protein secondary structure based on physical theory. Histones.

Secondary structures of histones H1, H2A, H2B, H3, H4 and H5 have been calculated by the computer program ALB based on a molecular theory of protein secondary structure. The predicted secondary structures of all histones are predominantly alpha-helical. The calculated secondary structure of linker histones H1 and H5 is close to that previously obtained from two-dimensional NMR data. For each of the core histones (H2A, H2B, H3, H4) one long alpha-helix and several short ones have been predicted. These long helices can be identified with rods in the low-resolution electron density map.

Computer Simulation

Binding of the globular domain of linker histones H5/H1 to the nucleosome: a hypothesis.

The amino acid sequence of the central globular domain of histone H1/H5 family members is highly homologous. Twenty-four such sequences have been compared to establish the conserved and variable residues. Fitting this to the tertiary structure of the H5 globular domain shows which of the conserved and variable residues are peripheral and which internal. Particular attention is paid to conserved basic residues on the surface, which we take to be DNA binding. Variable regions and conserved acidic residues are assumed not to be sites of contact with DNA. We conclude that one face of the domain, containing a cluster of basic residues, is the principal DNA binding site whilst two opposing faces, orthogonal to the principal site and also containing conserved basic residues, are subsidiary DNA binding sites. Since the DNA binding surface of the domain covers a full 180 degrees arc, we propose that it contacts a 'cage' of three DNA strands on the 2-fold axis of the chromatosome.

Amino Acid Sequence

The 'molten globule' state is involved in the translocation of proteins across membranes?

Strong evidence exists that the translocation of proteins across a variety of membranes involves a non-native or denatured conformational states. On the other hand a compact state having secondary but not rigid tertiary structure and called the 'molten globule' state has been identified as being stable under mild denaturing conditions. A similar state has been shown to accumulate on the folding pathway of globular proteins. These states are compact though sufficiently expanded to include water, and they are internally mobile. It is proposed that these molten globule states may be suitable candidates for protein translocation across biological membranes.

Biological Transport

Sequential mechanism of refolding of carbonic anhydrase B.

The kinetics of refolding of bovine carbonic anhydrase B was studied by a variety of methods over a wide range of times (from milliseconds to hours). It has been shown that protein refolding proceeds through three stages. At the first stage (t1/2 approximately equal to 0.03 s) hydrophobic clusters and a compact state of the chain are formed. At the second stage (t1/2 approximately equal to 140 s) hydrophobic clusters are desolvated and the rigid native-like hydrophobic core is formed. At the third stage (t1/2 approximately equal to 600 s) the native active protein is formed.

Animals

An early intermediate of refolding alpha-lactalbumin forms within 20 ms.

The kinetics of alpha-lactalbumin refolding were studied by the stopped-flow method with the registration of CD and intrinsic fluorescence at several wavelengths. It was shown that the early kinetic intermediate forms during the dead-time of the experiment (20 ms). This intermediate has a considerable amount of secondary structure and unpolar clusters in its molecular structure but has no rigid tertiary structure.

Animals

Physical nature of the phase transition in globular proteins. Calorimetric study of human alpha-lactalbumin.

The guanidine hydrochloride-induced unfolding of human alpha-lactalbumin has been studied by isothermal calorimetry. It has been shown that a cooperative transition takes place only in the concentration interval of the denaturant between 0.3 and 2 mol X l-1. The cooperative transition coincides with the transition detected by circular dichroism in the near-ultraviolet region which reflects the destruction of the specific environment of aromatic side groups. According to scanning calorimetric investigations, the transition disappears in the acid form of the protein where circular dichroism of aromatic side groups is practically absent. At higher concentrations of guanidine hydrochloride, where destruction of the secondary structure and unfolding of the chain are observed, there is no cooperative heat absorption.

Calorimetry

Protein structure and neutral theory of evolution.

The neutral theory of evolution is extended to the origin of protein molecules. Arguments are presented which suggest that the amino acid sequences of many globular proteins mainly represent "memorized" random sequences while biological evolution reduces to the "editing" these random sequences. Physical requirements for a functional globular protein are formulated and it is shown that many of these requirement do not involve strategical selection of amino acid sequences during biological evolution but are inherent also for typical random sequences. In particular, it is shown that random sequences of polar and amino acid residues can form alpha-helices and beta-strand with lengths and arrangement along the chain similar to those in real globular proteins. These alpha- and beta-regions in random sequences can form three-dimensional folding patterns also similar to those in proteins. The arguments are presented suggesting that even the tight packing of side groups inside protein core do not require very strong biological selection of amino acid sequences either. Thus many structural features of real proteins can exist also in random sequences and the biological selection is needed mainly for the creation of active site of protein and for their stability under physiological conditions.

Amino Acid Sequence