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Improvement of the fungal enzyme pyranose 2-oxidase using protein engineering.

Native pyranose 2-oxidase (P2Ox) was purified from Peniophora sp. and characterized. To improve its catalytic efficiencies and stabilities by protein engineering, we cloned and expressed the P2Ox gene in Escherichia coli and received active, fully flavinylated recombinant P2OxA. Selenomethionine-labeled P2OxA was used for X-ray analysis and the resulting crystal structure enabled the rational design using variant P2OxA1 with the substitution E542K as template. Besides increased thermal and pH stabilities this variant showed improved catalytic efficiencies (k(cat)/K(m)) for the main substrates. A new variant, P2OxA2H, with an additional substitution T158A and a C-terminal His(6)-tag exhibited significantly decreased apparent K(m) values for D-glucose (0.47 mM), l-sorbose (1.79 mM), and D-xylose (1.35 mM). Compared to native P2Ox, the catalytic efficiencies were substantially improved for D-glucose (230-fold), L-sorbose (874-fold), and D-xylose (1751-fold). This P2Ox variant was used for the bioconversion of L-sorbose under O(2)-saturation in a molar scale. The structure-activity relationships of the amino acid substitutions were analyzed by modelling of the mutated P2Ox structures. Molecular docking calculations of various carbohydrates into the crystal structure of P2OxA and the analysis of the protein-ligand interactions in the docked complexes enabled us to explain the substrate specificity of the enzyme by a conserved hydrogen bond pattern which is formed between the protein and all substrates.

Amino Acid Sequence↗

Protein engineering of oxygenases for biocatalysis.

Oxygenase enzymes have seen limited practical applications because of their complexity, poor stabilities, and often low catalytic rates. However, their ability to perform difficult chemistry with high selectivity and specificity has kept oxygenases at the forefront of engineering efforts. Growing understanding of structure-function relationships and improved protein engineering methods are paving the way for applications of oxygenases in chemical synthesis and bioremediation.

Animals↗

Insertional protein engineering for analytical molecular sensing.

The quantitative detection of low analyte concentrations in complex samples is becoming an urgent need in biomedical, food and environmental fields. Biosensors, being hybrid devices composed by a biological receptor and a signal transducer, represent valuable alternatives to non biological analytical instruments because of the high specificity of the biomolecular recognition. The vast range of existing protein ligands enable those macromolecules to be used as efficient receptors to cover a diversity of applications. In addition, appropriate protein engineering approaches enable further improvement of the receptor functioning such as enhancing affinity or specificity in the ligand binding. Recently, several protein-only sensors are being developed, in which either both the receptor and signal transducer are parts of the same protein, or that use the whole cell where the protein is produced as transducer. In both cases, as no further chemical coupling is required, the production process is very convenient. However, protein platforms, being rather rigid, restrict the proper signal transduction that necessarily occurs through ligand-induced conformational changes. In this context, insertional protein engineering offers the possibility to develop new devices, efficiently responding to ligand interaction by dramatic conformational changes, in which the specificity and magnitude of the sensing response can be adjusted up to a convenient level for specific analyte species. In this report we will discuss the major engineering approaches taken for the designing of such instruments as well as the relevant examples of resulting protein-only biosensors.

Journal Article↗

A rationale for the absolute conservation of Asn70 and Pro71 in mitochondrial cytochromes c suggested by protein engineering.

The absolutely conserved residues Asn70 and Pro71 of mitochondrial cytochrome c have been targeted for protein engineering by semisynthesis. Neither residue has even been implicated in mechanistic schemes, and we reasoned that the conservation of this dipeptide was to fulfill a crucial structural role. Semisynthesis was through condensation by autocatalytic fragment religation of natural fragment 1-65 (H) of the horse protein and synthetic 39-residue peptides containing noncoded amino acids prepared by solid-phase methods. High yields of the purified analogs, homoserine70 and norvaline71 cytochromes c, were obtained. Functional tests revealed minor destabilization of the Hse70-containing structure, with little adverse effect in in vitro assays, but [Nva71] cytochrome c was essentially devoid of activity in these systems. This appeared to be a consequence of a shift, more pronounced than any yet reported, in the conformational equilibrium between the active state III conformer and the inactive, 'alkaline' state IV. The results support our view that this dipeptide is optimal for, and rigidifies, the right-angle bend between two alpha-helices, thus determining the conformation of the 70s loop that terminates in the sixth ligand Met80, and 'forcing' the coordination of iron by thioether sulfur in the presence of the adjacent more avid amine ligands of state IV. Not only is [Nva71] cytochrome c inactive at pH 7, but it also proves to be an extremely potent inhibitor of electron transfer by native state III, thus providing the rationale for the evolutionary conservation of a high pK for the ligand exchange reaction.

Amino Acid Sequence↗

Reduction of irreversible protein adsorption on solid surfaces by protein engineering for increased stability.

The influence of protein stability on the adsorption and desorption behavior to surfaces with fundamentally different properties (negatively charged, positively charged, hydrophilic, and hydrophobic) was examined by surface plasmon resonance measurements. Three engineered variants of human carbonic anhydrase II were used that have unchanged surface properties but large differences in stability. The orientation and conformational state of the adsorbed protein could be elucidated by taking all of the following properties of the protein variants into account: stability, unfolding, adsorption, and desorption behavior. Regardless of the nature of the surface, there were correlation between (i) the protein stability and kinetics of adsorption, with an increased amplitude of the first kinetic phase of adsorption with increasing stability; (ii) the protein stability and the extent of maximally adsorbed protein to the actual surface, with an increased amount of adsorbed protein with increasing stability; (iii) the protein stability and the amount of protein desorbed upon washing with buffer, with an increased elutability of the adsorbed protein with increased stability. All of the above correlations could be explained by the rate of denaturation and the conformational state of the adsorbed protein. In conclusion, protein engineering for increased stability can be used as a strategy to decrease irreversible adsorption on surfaces at a liquid-solid interface.

Adsorption↗

Various mutations by using yeast gene for protein-engineering.

For construct an efficient-ethanol fermentation system from xylose by using yeast, several protein-engineering of xylitol dehydrogenase (XDH) were carried out. At first, we created a NADP+-dependent XDH by multiple site-directed mutagenesis. Furthermore, we succeeded to improve the thermostability by introduction of the structural zinc atom into XDH which does not possess a second zinc atom natively. Finally, the introduction of a structural zinc atom into the NADP+-dependent XDH mutant increased the thermostability of this mutant and improved further the catalytic efficiency with NADP+.

Coenzymes↗

A decade of protein engineering on ribonuclease T1--atomic dissection of the enzyme-substrate interactions.

During the last decade, protein engineering has been used to identify the residues that contribute to the ribonuclease-T1-catalyzed transesterification. His40, Glu58 and His92 accelerate the associative nucleophilic displacement at the phosphate atom by the entering 2'-oxygen downstream guanosines in a highly cooperative manner. Glu58, assisted by the protonated His40 imidazole, abstracts a proton from the 2'-oxygen, while His92 protonates the leaving group. Tyr38, Arg77 and Phe100 further stabilize the transition state of the reaction. A functionally independent subsite, including Asn36 and Asn98, contributes to chemical turnover by aligning the substrate relative to the catalytic side chains upon binding of the leaving group. An invariant structural motive, involving residues 42-46, renders ribonuclease T1 guanine specific through a series of intermolar hydrogen bonds. Tyr42 contributes significantly to guanine binding through a parallel face-to-face stacking interaction. Tyr45, often referred to as the lid of the guanine-binding site, does not contribute to the binding of the base.

Guanine↗

The folding of an enzyme. III. Structure of the transition state for unfolding of barnase analysed by a protein engineering procedure.

The structure of the first significant transition state on the unfolding pathway of barnase has been analysed in detail by protein engineering methods. Over 50 mutations placed strategically over the whole protein have been used as probes to report on the local structure in the transition state. Several different probes for many regions of the protein give consistent results as do multiple probes at the same site. The overall consistency of phi values indicates that the mutations have not produced changes in the protein that significantly alter the transition state for unfolding. A fine-structure analysis of interactions has also been conducted by removing different parts of the same side-chains. Many of the results of simple mutations fall nicely into the two clear-cut cases of phi = 1 or 0, indicating that the local noncovalent bonds are either fully broken or fully made in the transition state. Much of the structure of barnase in the transition state for unfolding is very similar to that in the folded protein. Both major alpha-helices fray at the N terminus. The last two turns in helix1 are certainly intact, as is the C terminus of helix2. The general picture of the beta-sheet is that the three central beta-strands are completely intact while the two edge beta-strands are mainly present but certainly weakened. The first five residues of the protein unwind but the C terminus remains folded. Three of the five loops are unfolded. The edges of the main hydrophobic core (core1) are significantly weakened, however, and their breaking appears partly rate determining. The centre of the small hydrophobic core3 remains intact. Core2 is completely disrupted. The first events in unfolding are thus: the unfolding of several loops, the unwinding of the helices from the N termini, and the weakening and disruption of the hydrophobic cores. The values of phi are found to be substantially the same under conditions that favour folding as under conditions that are highly denaturing, and so the structure of the unfolding transition state is substantially the same in water as in the presence of denaturant. The structure of the final kinetically significant transition state for refolding is identical to that for unfolding. The final events in refolding are, accordingly, the consolidation of the hydrophobic cores, the closing of many loops and the capping of the N termini of the helices.

Amino Acid Sequence↗

Protein engineering with monomeric triosephosphate isomerase (monoTIM): the modelling and structure verification of a seven-residue loop.

Protein engineering experiments have been carried out with loop-1 of monomeric triosephosphate isomerase (monoTIM). Loop-1 of monoTIM is disordered in every crystal structure of liganded monoTIM, but in the wild-type TIM it is a very rigid dimer interface loop. This loop connects the first beta-strand with the first alpha-helix of the TIM-barrel scaffold. The first residue of this loop, Lys13, is a conserved catalytic residue. The protein design studies with loop-1 were aimed at rigidifying this loop such that the Lys13 side chain points in the same direction as seen in wild type. The modelling suggested that the loop should be made one residue shorter. With the modelling package ICM the optimal sequence of a new seven-residue loop-1 was determined and its structure was predicted. The new variant could be expressed and purified and has been characterized. The catalytic activity and stability are very similar to those of monoTIM. The crystal structure (at 2.6 A resolution) shows that the experimental loop-1 structure agrees well with the modelled loop-1 structure. The direct superposition of the seven loop residues of the modelled and experimental structures results in an r.m.s. difference of 0.5 A for the 28 main chain atoms. The good agreement between the predicted structure and the crystal structure shows that the described modelling protocol can be used successfully for the reliable prediction of loop structures.

Amino Acid Sequence↗

Kinetic stabilization of the native state by protein engineering: implications for inhibition of transthyretin amyloidogenesis.

The amyloidogenic homotetrameric protein transthyretin (TTR) must undergo rate-limiting dissociation to partially denatured monomers in order to aggregate. TTR contains two distinct quaternary interfaces, one of which defines the binding sites for thyroxine and small-molecule amyloidogenesis inhibitors. Kinetic stabilization of the tetramer can be accomplished either by the binding of amyloidogenesis inhibitors selectively to the native state over the dissociative transition state or by the introduction of trans-suppressor subunits (T119M) into heterotetramers to destabilize the dissociative transition state. In each case, increasing the dissociation activation barrier prevents tetramer dissociation. Herein, we demonstrate that tethering two subunits whose quaternary interface defines the thyroxine binding site also dramatically increases the barrier for tetramer dissociation, apparently by destabilization of the dissociative transition state. The tethered construct (TTR-L-TTR)2 is structurally and functionally equivalent to wild-type TTR. Urea is unable to denature (TTR-L-TTR)2, yet it is able to maintain the denatured state once denaturation is achieved by GdnHCl treatment, suggesting that (TTR-L-TTR)2 is kinetically rather than thermodynamically stabilized, consistent with the identical wild-type TTR and (TTR-L-TTR)2 GdnHCl denaturation curves. Studies focused on a construct containing a single TTR-L-TTR chain and two normal monomer subunits establish that alteration of only one quaternary structural interface is sufficient to impose kinetic stabilization on the entire quaternary structure.

Amyloid↗

Protein engineering as a strategy to avoid formation of amyloid fibrils.

The activation domain of human procarboxypeptidase A2 (ADA2h) aggregates following thermal or chemical denaturation at acidic pH. The aggregated material contains well-defined ordered structures with all the characteristics of the fibrils associated with amyloidotic diseases. Variants of ADA2h containing a series of mutations designed to increase the local stability of each of the two helical regions of the protein have been found to have a substantially reduced propensity to form fibrils. This arises from a reduced tendency of the denatured species to aggregate rather than from a change in the overall stability of the native state. The reduction in aggregation propensity may result from an increase in the stability of local relative to longer range interactions within the polypeptide chain. These findings show that the intrinsic ability of a protein to form amyloid can be altered substantially by protein engineering methods without perturbing significantly its overall stability or activity. This suggests new strategies for combating diseases associated with the formation of aggregated proteins and for the design of novel protein or peptide therapeutics.

Amino Acid Sequence↗

Structure of the hydrophobic core in the transition state for folding of chymotrypsin inhibitor 2: a critical test of the protein engineering method of analysis.

Chymotrypsin inhibitor 2 (CI2) unfolds and refolds according to a simple two-state kinetic mechanism. The single rate-determining transition state may thus be studied by kinetics of both unfolding and refolding. This has allowed the direct testing of some facets of the protein engineering procedure (phi-value analysis). The structure of the hydrophobic core of CI2 in the transition state was analyzed from kinetic and thermodynamic measurements of guanidinium chloride-induced unfolding of 11 mutants and of their rates of refolding. In all cases, the strengths of the interactions measured from refolding kinetics in water are in excellent agreement with those measured from unfolding kinetics in guanidinium chloride solutions and extrapolated to zero molar denaturant. Changes in the free energies of unfolding on mutation, as well as other equilibrium properties calculated from the rate constants, are also in excellent agreement with those measured directly from equilibrium studies. These data provide further evidence for application of the principle of microscopic reversibility to aspects of protein folding in the presence of denaturant and the validity of extrapolation to the absence of denaturant. The edges of the hydrophobic core of CI2 are significantly weakened in the transition state, and, in many cases, the interactions are totally lost. The center of the core remains partially intact; the interaction energy is lowered by about 50%.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Beta-turn propensities as paradigms for the analysis of structural motifs to engineer protein stability.

The thermodynamic stability of a protein provides an experimental metric for the relationship of protein sequence and native structure. We have investigated an approach based on an analysis of the structural database for stability engineering of an immunoglobulin variable domain. The most frequently occurring residues in specific positions of beta-turn motifs were predicted to increase the folding stability of mutants that were constructed by site-directed mutagenesis. Even in positions in which different residues are conserved in immunoglobulin sequences, the predictions were confirmed. Frequently, mutants with increased beta-turn propensities display increased folding cooperativities, suggesting pronounced effects on the unfolded state independent of the expected effect on conformational entropy. We conclude that structural motifs with predominantly local interactions can serve as templates with which patterns of sequence preferences can be extracted from the database of protein structures. Such preferences can predict the stability effects of mutations for protein engineering and design.

Amino Acid Sequence↗

Conversion of thrombin into an anticoagulant by protein engineering.

At sites of vascular injury, thrombin interacts with multiple procoagulant substrates, to mediate both fibrin clotting and platelet aggregation. But upon binding to thrombomodulin on the vascular endothelium, thrombin instead activates protein C, thereby functioning as an anticoagulant and attenuating clot formation. Upon infusion in vivo, both the procoagulant and anticoagulant effects of thrombin were observed. Preliminary studies indicating that thrombin's protein C activating and fibrinogen clotting activities could be dissociated by mutagenesis suggested to us that a thrombin variant that lacked procoagulant activity while retaining anticoagulant function might be an attractive antithrombotic agent. Using protein engineering, we introduced a single substitution, E229A, that substantially shifted thrombin's specificity in favour of the anticoagulant substrate, protein C. In monkeys, this modified thrombin functioned as an endogenous protein C activator demonstrating dose-dependent, reversible anticoagulation without any indication of procoagulant activity. Notably, template bleeding times were not prolonged, suggesting a reduced potential for bleeding complications.

Amino Acid Sequence↗

Engineered protein inhibitors of proteases.

The control of proteolysis in an organism is achieved under normal circumstances through a balance of protease production, degradation and inactivation, via interaction with an endogenous inhibitor. When one of these mechanisms for control of proteolysis fails, it can result in the onset or progression of disease. Control of aberrant proteolysis is, therefore, a potetntial point of therapeutic intervention, and can be achieved either through the replacement of an absent endogenous inhibitor or by dosing with an inhibitor that is specific for a protease that is being over produced. Engineered protein inhibitors of proteases offer the potential to overcome the difficulties involved in identifying specific inhibitors via small-molecule-based approaches.

Animals↗

Protein engineering of alcohol dehydrogenases: effects of amino acid changes at positions 93 and 48 of yeast ADH1.

By protein engineering we have investigated changes to two amino acid residues (Trp93 and Ser48) in the substrate pocket of yeast alcohol dehydrogenase 1. Upon changing Thr48 to serine we produced an enzyme which has markedly greater activity towards aliphatic alcohols with chain length up to 8, together with a general increase in catalytic activity (V/K). Changes at position 93 were less pronounced, with the Phe enzyme being more active than the parent towards the range of alcohols but with the alanine enzyme showing very little difference from the wild-type. Enzymes with the double changes at 48 and 93 showed increased activity towards alcohols with 3-8 carbons but the increases were not additive over the single changes. The enzymes with changes at the two positions would metabolize both stereoisomers of 2-octanol whereas the parent ADH would attack only one of them. None of the engineered enzymes would attack cyclohexanol or aromatic alcohols. The results are in general agreement with the prediction that reducing the size of amino acids in the substrate pocket would enhance the ability to oxidize alcohols larger than ethanol.

Alcohol Dehydrogenase↗