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Homology-independent protein engineering.

Is structure, rather than sequence, the key to the successful generation of truly novel proteins? While protein evolution by homologous recombination has become an established tool to explore confined regions in sequence space, the generation of functional hybrid proteins by homology-independent methods further expands the scope of protein engineering.

Combinatorial Chemistry Techniques↗

Engineering proteins, subcloning and hyperexpressing oxidoreductase genes.

A very efficient system for subcloning and studying protein sequences, combining previously established elements for hyperexpression, replication and screening, was used to hyperproduce and characterize seven different products. It expedited the cloning of genes, in a multipurpose recombinant DNA construct, for all the requirements to study and engineer proteins with a strain of Escherichia coli. Genes encoding six heme proteins and a flavoprotein have been subcloned and expressed to 13-30% of the total cell protein, greatly facilitating purification and analyses. Three of the heme proteins and the flavoprotein incorporated prosthetic groups in E. coli, and exhibited the expected activities. Four of the enzymes have been purified to homogeneity and two of these crystallized for X-ray diffraction analysis. A rapid mutagenesis protocol, based on polymerase chain reactions, was successfully applied to clone derivatives of one of these enzymes, cytochrome c peroxidase. Thus, this system fulfills all criteria for engineering proteins in an efficient and concerted manner.

Bacterial Proteins↗

Demonstration of long-range interactions in a PDZ domain by NMR, kinetics, and protein engineering.

Understanding the basis of communication within protein domains is a major challenge in structural biology. We present structural and dynamical evidence for allosteric effects in a PDZ domain, PDZ2 from the tyrosine phosphatase PTP-BL, upon binding to a target peptide. The NMR structures of its free and peptide-bound states differ in the orientation of helix alpha2 with respect to the remainder of the molecule, concomitant with a readjustment of the hydrophobic core. Using an ultrafast mixing instrument, we detected a deviation from simple bimolecular kinetics for the association with peptide that is consistent with a rate-limiting conformational change in the protein (k(obs) approximately 7 x 10(3) s(-1)) and an induced-fit model. Furthermore, the binding kinetics of 15 mutants revealed that binding is regulated by long-range interactions, which can be correlated with the structural rearrangements resulting from peptide binding. The homologous protein PSD-95 PDZ3 did not display a similar ligand-induced conformational change.

Amino Acid Motifs↗

Application of combinatorial libraries and protein engineering to the discovery of novel anti-thrombotic drugs.

Combinatorial libraries and protein engineering represent two new powerful tools in drug discovery and development. The application of a combinatorial ssDNA library to thrombin led to the discovery of a sequence-specific nucleotide-based thrombin inhibitor (thrombin aptamer). The thrombin aptamer has a novel tertiary structure revealed by NMR and shows potent rapid anticoagulation with a short half-life in vivo. It has been used successfully to replace heparin in a canine cardiopulmonary bypass model. Functional mapping of the surface residues of thrombin led to the generation of a modified thrombin with markedly diminished procoagulant properties while retaining its ability to activate protein C. This engineered thrombin functions as a protein C activator and demonstrates potent anticoagulation in vivo without prolongation of the bleeding time.

Angioplasty, Balloon↗

Bioprospecting in plants for engineered proteins.

For more than two decades, bioengineered plants have produced protein therapeutics for human and animal use. Almost all proteins produced by other existing systems, including antibodies, vaccines and plasma proteins, have now been manufactured in plants. Considering the limitations of microbial and mammalian reactor-based protein-production technologies and the impending bottleneck in manufacturing capacity, plants are now emerging as an attractive alternative system with which to supply the growing need for protein-based therapeutics. However, full realization of the promise of plant-derived engineered proteins requires that we confront the dual challenges of bioequivalence and product consistency, challenges that are largely related to post-translational protein modifications (PTMs) that are crucial to the structure and function of most eukaryotic proteins. Among the protein PTMs, the foremost challenge for bioactivity and acceptance by the pharmaceutical and biotechnology industries and regulatory agencies is glycosylation. Advances made in recent years that 'humanize' plant glycosylation pathways combined with the discovery of terminal sialic acids (SAs) in plants now make feasible the bioengineering in plants of glycoproteins that have mammalian-like glycosylation.

Animals↗

Strategy and implementation of a system for protein engineering.

This paper describes an overall view of an industrial protein engineering project from conception to successful completion. The choice of rational design was determined by the availability of an excellent three-dimensional crystal structure and the availability of information in the literature to define a strategy. The design strategy was refined extensively during the course of the project. The development of methods for mutagenesis, expression, verification, purification, and characterization of mutant enzymes is dictated in part by the enzyme property one chooses to modify and must be rapid yet accurate. Such an approach would be applicable to improve the stability of any other protein or enzyme. Using this approach, we successfully increased the stability of subtilisin BL over 10-fold at 50 degrees C with an overall success rate greater than 60%.

Bacillus↗

Unveiling a hidden folding intermediate in c-type cytochromes by protein engineering.

Several investigators have highlighted a correlation between the basic features of the folding process of a protein and its topology, which dictates the folding pathway. Within this conceptual framework we proposed that different members of the cytochrome c (cyt c) family share the same folding mechanism, involving a consensus partially structured state. Pseudomonas aeruginosa cyt c(551) (Pa cyt c(551)) folds via an apparent two-state mechanism through a high energy intermediate. Here we present kinetic evidence demonstrating that it is possible to switch its folding mechanism from two to three state, stabilizing the high energy intermediate by rational mutagenesis. Characterization of the folding kinetics of one single-site mutant of the Pa cyt c(551) (Phe(7) to Ala) indeed reveals an additional refolding phase and a fast unfolding process which are explained by the accumulation of a partially folded species. Further kinetic analysis highlights the presence of two parallel processes both leading to the native state, suggesting that the above mentioned species is a non obligatory on-pathway intermediate. Determination of the crystallographic structure of F7A shows the presence of an extended internal cavity, which hosts three "bound" water molecules and a H-bond in the N-terminal helix, which is shorter than in the wild type protein. These two features allow us to propose a detailed structural interpretation for the stabilization of the native and especially the intermediate states induced by a single crucial mutation. These results show how protein engineering, x-ray crystallography and state-of-the-art kinetics concur to unveil a folding intermediate and the structural determinants of its stability.

Crystallography, X-Ray↗

Determination of structurally conservative amino acids of the HIV-1 protein gp120 V3 loop as promising targets for drug design by protein engineering approaches.

Based on the published NMR spectroscopy data, three-dimensional structures of the HIV-1 gp120 protein V3 loop were obtained by computer modeling in the viral strains HIV-Haiti and HIV-MN. In both cases, the secondary structure elements and conformations of irregular stretches were determined for the fragment representing the principal antigenic determinant of the virus, as well as determinants of the cellular tropism and syncytium formation. Notwithstanding the high variability of the amino acid sequence of gp120 protein, more than 50% of the V3 loop residues retained their conformations in the different HIV-1 virions. The combined analysis of the findings and the literature data on the biological activity of the individual residues of the HIV-1 V3 loop resulted in identification of its structurally conservative amino acids, which seem to be promising targets for antiviral drug design by protein engineering approaches.

Amino Acid Sequence↗

Protein engineering of subtilisin.

The serine protease subtilisin is an important industrial enzyme as well as a model for understanding the enormous rate enhancements affected by enzymes. For these reasons along with the timely cloning of the gene, ease of expression and purification and availability of atomic resolution structures, subtilisin became a model system for protein engineering studies in the 1980s. Fifteen years later, mutations in well over 50% of the 275 amino acids of subtilisin have been reported in the scientific literature. Most subtilisin engineering has involved catalytic amino acids, substrate binding regions and stabilizing mutations. Stability has been the property of subtilisin which has been most amenable to enhancement, yet perhaps least understood. This review will give a brief overview of the subtilisin engineering field, critically review what has been learned about subtilisin stability from protein engineering experiments and conclude with some speculation about the prospects for future subtilisin engineering.

Calcium↗

New recombinant DNA methodology for protein engineering.

Over the past year considerable progress has been made in the application of recombinant DNA technology to protein engineering. A number of new methods for gene synthesis and mutagenesis have been reported that simplify the construction of novel coding sequences. The polymerase chain reaction plays an increasingly important role in these methods. Amino acid diversity has been extended by the incorporation of unnatural amino acids via coupled in vitro transcription-translation methods. Novel random mutagenesis strategies have been developed that substitute amino acids with a desired chemical character at a given position, thereby generating a sophisticated library of protein variants.

Amino Acids↗

Engineering proteins to facilitate bioprocessing.

Genetic engineering is now being applied to aid the purification of recombinant proteins. The addition of specifically designed tags or the modification of sequences within the target-gene product has enabled the development of novel strategies for downstream processing that can be employed for efficient recovery of both native or modified proteins. This article discusses novel trends in genetic engineering that aid the bioprocessing of recombinant proteins.

Amino Acid Sequence↗

Protein engineering of Rubisco.

Modification of the kinetic parameters of enzymes by protein engineering requires extensive knowledge of the structural details of the enzyme and its complexes with different reaction intermediate analogues. Such structural studies are described here for Rubisco, ribulose-1,5-bisphosphate carboxylase/oxygenase, which catalyzes the initial reactions of two important but competing physiological events in green plants; carbon dioxide fixation and photorespiration. Observed functional changes in mutants of Rubisco are correlated with structural details as well as with the defined conformational changes that occur during catalysis. A possible functional role of the small subunit of Rubisco is described based on a comparison of the active-site geometry of a bacterial L2 molecule with that of higher plant L8S8 molecules. The ultimate aim of these studies is to engineer Rubisco mutants that are more efficient than the wild-type enzyme by decreasing the oxygenase/carboxylase ratio.

Kinetics↗

Glucose isomerase: insights into protein engineering for increased thermostability.

Thermostable glucose isomerases are desirable for production of 55% fructose syrups at >90 degrees C. Current commercial enzymes operate only at 60 degrees C to produce 45% fructose syrups. Protein engineering to construct more stable enzymes has so far been relatively unsuccessful, so this review focuses on elucidation of the thermal inactivation pathway as a future guide. The primary and tertiary structures of 11 Class 1 and 20 Class 2 enzymes are compared. Within each class the structures are almost identical and sequence differences are few. Structural differences between Class 1 and Class 2 are less than previously surmised. The thermostabilities of Class 1 enzymes are essentially identical, in contrast to previous reports, but in Class 2 they vary widely. In each class, thermal inactivation proceeds via the tetrameric apoenzyme, so metal ion affinity dominates thermostability. In Class 1 enzymes, subunit dissociation is not involved, but there is an irreversible conformational change in the apoenzyme leading to a more thermostable inactive tetramer. This may be linked to reversible conformational changes in the apoenzyme at alkaline pH arising from electrostatic repulsions in the active site, which break a buried Arg-30-Asp-299 salt bridge and bring Arg-30 to the surface. There is a different salt bridge in Class 2 enzymes, which might explain their varying thermostability. Previous protein engineering results are reviewed in light of these insights.

Aldose-Ketose Isomerases↗

Expression of heterologous proteins in Pichia pastoris: a useful experimental tool in protein engineering and production.

The use of the methylotrophic yeast, Pichia pastoris, as a cellular host for the expression of recombinant proteins has become increasing popular in recent times. P. pastoris is easier to genetically manipulate and culture than mammalian cells and can be grown to high cell densities. Equally important, P. pastoris is also a eukaryote, and thereby provides the potential for producing soluble, correctly folded recombinant proteins that have undergone all the post-translational modifications required for functionality. Additionally, linearized foreign DNA can be inserted in high efficiency via homologous recombination procedures to generate stable cell lines whilst expression vectors can be readily prepared that allow multiple copies of the target protein, multimeric proteins with different subunit structures, or alternatively the target protein and its cognate binding partners, to be expressed. A further benefit of the P. pastoris system is that strong promoters are available to drive the expression of a foreign gene(s) of interest, thus enabling production of large amounts of the target protein(s) with relative technical ease and at a lower cost than most other eukaryotic systems. The purpose of this review is to summarize important developments and features of this expression system and, in particular, to examine from an experimental perspective the genetic engineering, protein chemical and molecular design considerations that have to be taken into account for the successful expression of the target recombinant protein. Included in these considerations are the influences of P. pastoris strain selection; the choice of expression vectors and promoters; procedures for the transformation and integration of the vectors into the P. pastoris genome; the consequences of rare codon usage and truncated transcripts; and techniques employed to achieve multi-copy integration numbers. The impact of the alcohol oxidase (AOX) pathways in terms of the mut+ and mut(s) phenotypes, intracellular expression and folding pathways is examined. The roles of pre-pro signal sequences such as the alpha mating factor (alpha-MF) and the Glu-Ala repeats at the kex2p cleavage site on the processing of the protein translate(s) have also been considered. Protocols for the generation of protein variants and mutants for screening for orphan cognate binding partners and the use of experimental platforms addressing the molecular recognition behaviour of recombinant proteins such as the extracellular domains of transmembrane receptors with their physiological ligands are also described. Finally, the palindromic patterns of glycosylation that can occur with these expression systems, in terms of the role and location of the sequon in the primary structure, the number of mannose units and the types of oligosaccharides incorporated as Asn- or O-linkages and their impact on the thermostability and immunogenicity of the recombinant protein are considered. Procedures to prevent glycosylation through manipulation of cell culture conditions or via enzymatic and site-directed mutagenesis methods are also discussed.

Gene Expression↗

Protein engineering as a tool for crystallography.

The generation of large quantities of protein by overexpression technology has enabled structural studies of many important molecules that are found in only minute quantities in the cell. An increasing number of structures of proteins overexpressed in non-native systems have been solved. Crystallographers now have an extremely powerful tool, namely protein engineering, for the generation of native and derivative crystals that diffract to high resolution. The mutation of residues or generation of compact domains through truncation has resulted in crystals with enhanced diffraction properties. Heavy atom derivative crystals isomorphous to the native protein may also be engineered either by introducing cysteines or by removing cysteines whose reaction with heavy-atom compounds results in poor crystals.

Crystallization↗

Population and structure determination of hidden folding intermediates by native-state hydrogen exchange-directed protein engineering and nuclear magnetic resonance.

Structural characterization of folding intermediates has been one of the important steps toward understanding the mechanism of protein folding. However, it has been very difficult to obtain high-resolution structures of folding intermediates. Such results have become available only very recently. Here, we review a procedure that uses the native-state amide hydrogen exchange-directed protein engineering method to populate partially unfolded intermediates and multidimensional NMR to solve the high-resolution structures of the intermediates.

Models, Molecular↗