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Biomedical subjects

S J Hubbard

Publications and source records attributed to S J Hubbard.

At least 19 recordsLinked to original sources

Identification of snails within the Bulinus africanus group from East Africa by multiplex SNaPshot trade mark analysis of single nucleotide polymorphisms within the cytochrome oxidase subunit I.

Identification of populations of Bulinus nasutus and B. globosus from East Africa is unreliable using characters of the shell. In this paper, a molecular method of identification is presented for each species based on DNA sequence variation within the mitochondrial cytochrome oxidase subunit I (COI) as detected by a novel multiplexed SNaPshotTM assay. In total, snails from 7 localities from coastal Kenya were typed using this assay and variation within shell morphology was compared to reference material from Zanzibar. Four locations were found to contain B. nasutus and 2 locations were found to contain B. globosus. A mixed population containing both B. nasutus and B. globosus was found at Kinango. Morphometric variation between samples was considerable and UPGMA cluster analysis failed to differentiate species. The multiplex SNaPshotTM assay is an important development for more precise methods of identification of B. africanus group snails. The assay could be further broadened for identification of other snail intermediate host species.

Animals↗

Marked differences between metalloproteases meprin A and B in substrate and peptide bond specificity.

Meprin A and B are highly regulated, secreted, and cell-surface metalloendopeptidases that are abundantly expressed in the kidney and intestine. Meprin oligomers consist of evolutionarily related alpha and/or beta subunits. The work herein was carried out to identify bioactive peptides and proteins that are susceptible to hydrolysis by mouse meprins and kinetically characterize the hydrolysis. Gastrin-releasing peptide fragment 14-27 and gastrin 17, regulatory molecules of the gastrointestinal tract, were found to be the best peptide substrates for meprin A and B, respectively. Peptide libraries and a variety of naturally occurring peptides revealed that the meprin beta subunit has a clear preference for acidic amino acids in the P1 and P1' sites of substrates. The meprin alpha subunit selected for small (e.g. serine, alanine) or hydrophobic (e.g. phenylalanine) residues in the P1 and P1' sites, and proline was the most preferred amino acid at the P2' position. Thus, although the meprin alpha and beta subunits share 55% amino acid identity within the protease domain and are normally localized at the same tissue cell surfaces, they have very different substrate and peptide bond specificities indicating different functions. Homology models of the mouse meprin alpha and beta protease domains, based on the astacin crystal structure, revealed active site differences that can account for the marked differences in substrate specificity of the two subunits.

Amino Acid Sequence↗

A combination of chemical derivatisation and improved bioinformatic tools optimises protein identification for proteomics.

The identification of individual protein species within an organism's proteome has been optimised by increasing the information produced from mass spectral analysis through the chemical derivatisation of tryptic peptides and the development of new software tools. Peptide fragments are subjected to two forms of derivatisation. First, lysine residues are converted to homoarginine moieties by guanidination. This procedure has two advantages, first, it usually identifies the C-terminal amino acid of the tryptic peptide and also greatly increases the total information content of the mass spectrum by improving the signal response of C-terminal lysine fragments. Second, an Edman-type phenylthiocarbamoyl (PTC) modification is carried out on the N-terminal amino acid. The renders the first peptide bond highly susceptible to cleavage during mass spectrometry (MS) analysis and consequently allows the ready identification of the N-terminal residue. The utility of the procedure has been demonstrated by developing novel bioinformatic tools to exploit the additional mass spectral data in the identification of proteome proteins from the yeast Saccharomyces cerevisiae. With this combination of novel chemistry and bioinformatics, it should be possible to identify unambiguously any yeast protein spot or band from either two-dimensional or one-dimensional electropheretograms.

Databases, Factual↗

Bioinformatic assessment of mass spectrometric chemical derivatisation techniques for proteome database searching.

Identification of proteins from the mass spectra of peptide fragments generated by proteolytic cleavage using database searching has become one of the most powerful techniques in proteome science, capable of rapid and efficient protein identification. Using computer simulation, we have studied how the application of chemical derivatisation techniques may improve the efficiency of protein identification from mass spectrometric data. These approaches enhance ion yield and lead to the promotion of specific ions and fragments, yielding additional database search information. The impact of three alternative techniques has been assessed by searching representative proteome databases for both single proteins and simple protein mixtures. For example, by reliably promoting fragmentation of singly-charged peptide ions at aspartic acid residues after homoarginine derivatisation, 82% of yeast proteins can be unambiguously identified from a single typical peptide-mass datum, with a measured mass accuracy of 50 ppm, by using the associated secondary ion data. The extra search information also provides a means to confidently identify proteins in protein mixtures where only limited data are available. Furthermore, the inclusion of limited sequence information for the peptides can compensate and exceed the search efficiency available via high accuracy searches of around 5 ppm, suggesting that this is a potentially useful approach for simple protein mixtures routinely obtained from two-dimensional gels.

Animals↗

Effect of polymorphisms on ligand binding by mouse major urinary proteins.

Mouse urine contains an abundance of major urinary proteins, lipocalins, whose roles include slow release of semiochemicals. These proteins are highly polymorphic, with small sequence differences between individual members. In this study, we purified to homogeneity four of these proteins from two strains of inbred mice and characterized them by mass spectrometry. This analysis has led to the discovery of another variant in this group of proteins. Three of the polymorphic variants that map to the surface have no effect on the binding of a fluorescent probe in the binding cavity, but the fourth, characterized by a Phe to Val substitution in the cavity, shows a substantially lower affinity and fluorescence yield for the probe. These results are interpreted in light of the known crystal structure of the protein and molecular modeling calculations, which rationalize the experimental findings. This work raises the possibility that the calyx-binding site can show specificity for different ligands, the implications of which on pheromone binding and chemical communication are discussed.

1-Naphthylamine↗

Conceptual modelling of genomic information.

MOTIVATION: Genome sequencing projects are making available complete records of the genetic make-up of organisms. These core data sets are themselves complex, and present challenges to those who seek to store, analyse and present the information. However, in addition to the sequence data, high throughput experiments are making available distinctive new data sets on protein interactions, the phenotypic consequences of gene deletions, and on the transcriptome, proteome, and metabolome. The effective description and management of such data is of considerable importance to bioinformatics in the post-genomic era. The provision of clear and intuitive models of complex information is surprisingly challenging, and this paper presents conceptual models for a range of important emerging information resources in bioinformatics. It is hoped that these can be of benefit to bioinformaticians as they attempt to integrate genetic and phenotypic data with that from genomic sequences, in order to both assign gene functions and elucidate the different pathways of gene action and interaction. RESULTS: This paper presents a collection of conceptual (i.e. implementation-independent) data models for genomic data. These conceptual models are amenable to (more or less direct) implementation on different computing platforms.

Computational Biology↗

Proteolysis of native proteins. Trapping of a reaction intermediate.

When limited proteolysis of the mouse major urinary proteins by trypsin was stopped by rapid denaturation of the proteinase, a covalent adduct of the two proteins was observed. The formation of this complex required active trypsin, was favored at low pH, and could be reversed by the addition of covalent or non-covalent trypsin inhibitors. Electrospray mass spectrometry of the complex demonstrated that it was an acyl-enzyme complex, formed after an unusual exopeptidase attack on the C-terminal-Arg-Glu-OH sequence by trypsin. The complex could sequester over 50% of the trypsin in a digestion mixture, and as anticipated, the protein was an effective trypsin inhibitor.

Amino Acid Sequence↗

Use of fortuitous in vitro mutations in a synthetic Cu-Zn superoxide dismutase gene to illuminate protein structure-function relationships.

A completely synthetic bovine copper-zinc superoxide dismutase gene (Cu-ZnSOD), designed using the most favoured codons for expression in yeast, was constructed. Fortuitous mutations introduced while cloning the synthetic gene permitted the additional construction of four altered-polypeptide products representing two single (Pro121-->Leu and Gly128-->Asp), one double (Pro100-->Leu, Arg113-->Lys) and one triple (Pro100-->Leu, Arg113-->Lys, Pro121-->Leu) mutant. All five versions of the gene were expressed in a SOD-deficient Escherichia coli strain. The 'wild-type' version of the gene and the two single-mutants were expressed to equal extents (approximately 8% of total soluble protein). However, compared with the 'wild-type' enzyme, one single-mutant (Gly128-->Asp) showed almost twice as much dismutase activity whilst the other (Pro121-->Leu) exhibited only 70% of the 'wild-type' level. In contrast, the double and triple mutants showed diminished expression of the gene (approximately 1 and 3% of total soluble protein, respectively) and almost no detectable SOD activity. Polyclonal antibovine SOD antibody bound all the recombinant proteins, although some of the products showed decreased size and probably altered conformations. The 'wild-type' superoxide dismutase recombinant was correctly dimerized and possessed dismutase activity, as did the Gly128-->Asp mutant despite the change in charge. Mutations in the other three versions affected enzyme folding and activity. The effect of the different mutations appeared to be additive, with the Pro121-->Leu substitution leading to the apparent proteolytic degradation of the enzyme in vivo.

Amino Acid Sequence↗

Assessment of conformational parameters as predictors of limited proteolytic sites in native protein structures.

Despite the importance of limited proteolysis in biological systems it is often difficult to rationalize why a proteinase hydrolyses a particular bond, given a simple sequence specificity alone. Understanding of the structural properties limiting the proteolysis represents a first step on the pathway to control and manipulation of this phenomena. An expanded set of nick-sites in proteins of known tertiary structure, cut by both narrow and broad specificity proteinases, has been generated yielding a robust data set of strictly limited sites. A critical evaluation of an expanded set of conformational parameters revealed a strong correlation with limited proteolytic sites, although they are only modest predictors in isolation. The overall predictive power is significantly improved when the conformational parameters are combined in a weighted predictive scheme that permits their relative importance to be compared via a Metropolis search protocol. A subset of the parameters performs equally well demonstrating the key determinants of susceptibility. The derived predictive algorithm has been made available via the internet. Its utility for predicting other surface-correlated features is also discussed.

Algorithms↗

A functional role for protein cavities in domain: domain motions.

Motions between individual domains are known to play an important role in protein function. Protein cavities at domain interfaces have been suggested to facilitate such movements. Consequently, the cavity morphology in a set of multi-domain proteins has been critically examined. The conformational changes were well characterised by atomic resolution tertiary structures prior to and after domain motions. The results showed that interdomain cavities play a number of specific functional roles by either facilitating, or being otherwise involved with, domain: domain motions. Correspondingly, a higher fraction of cavity surface is observed at domain interfaces as compared to that buried within individual domains. Furthermore, interdomain cavity-forming residues were found to be highly conserved in terms of amino acid residue sequence and volume within their aligned protein families, more so than residues exclusive to the domain interface and intradomain cavities. These results provide substantial evidence of cavities fulfilling a specific functional role in multi-domain proteins.

Amino Acid Sequence↗

Limited proteolysis of native proteins: the interaction between avidin and proteinase K.

Avidin is a tetramer of 16-kDa subunits that have a high affinity for biotin. Proteolysis of native apoavidin by proteinase K results in a limited attack at the loop between beta-strands 3 and 4, involving amino acids 38-43. Specifically, sites of proteolysis are at Thr 40-Ser 41 and Asn 42-Glu 43. The limited proteolysis results in an avidin product that remains otherwise intact and which has enhanced binding for 4'-hydroxyazobenzene-2-benzoic acid (HABA), a chromogenic reporter that can occupy the biotin-binding site. Saturation of the biotin-binding site with the natural ligand protects avidin from proteolysis, but saturation with HABA enhances the rate of proteolysis of the same site. Analysis of the three-dimensional structures of apoavidin and holoavidin reveals that the 3-4 loop is accessible to solvent and scores highly in an algorithm developed to identify sites of proteolytic attack. The structure of holoavidin is almost identical to the apoprotein. In particular, the 3-4 loop has the same structure in the apo and holo forms, yet there are marked differences in proteolytic susceptibility of this region. Evidence suggests that the 3-4 loop is rather mobile and flexible in the apoprotein, and that it becomes constrained upon ligand binding. In one crystal structure of the apoprotein, this loop appears constrained by contacts with symmetry-related molecules. Structural analyses suggest that the "lid" to the biotin-binding site, formed by the 3-4 loop, is displaced and made more accessible by HABA binding, thereby enhancing its proteolytic susceptibility.

Amino Acid Sequence↗

Comparison of atomic solvation parametric sets: applicability and limitations in protein folding and binding.

Atomic solvation parameters (ASP) are widely used to estimate the solvation contribution to the thermodynamic stability of proteins as well as the free energy of association for protein-ligand complexes. They are also included in several molecular mechanics computer programs. In this work, a total of eight atomic solvation parametric sets has been employed to calculate the solvation contribution to the free energy of folding delta Gs for 17 proteins. A linear correlation between delta Gs and the number of residues in each protein was found for each ASP set. The calculations also revealed a great variety in the absolute value and in the sign of delta Gs values such that certain ASP sets predicted the unfolded state to be more stable than the folded, whereas others yield precisely the opposite. Further, the solvation contribution to the free energy of association of helix pairs and to the disassociation of loops (connection between secondary structural elements in proteins) from the protein tertiary structures were computed for each of the eight ASP sets and discrepancies were evident among them.

Chemical Phenomena↗

Evidence on close packing and cavities in proteins.

The packing of a protein's constituent atoms and the attendant constraints placed upon them form the basis of many attempts to understand and predict protein structure, stability, folding and even function. Although the significance of packing is yet to be fully comprehended, recent experimental and theoretical investigations have increased our understanding through the description of mutational effects on structure and stability, determination of the limits of packing constraints for both protein folding and structure prediction, and delineation of packing guidelines on the basis of observed cavities in the native protein folds. These advances and allowing protein modellers, engineers and designers to tackle their problems from a more rational perspective.

Hydrogen Bonding↗

Detection of internal cavities in globular proteins.

We have undertaken a study of internal cavities in five protein structure groups, each containing different crystallographic structure determinations of the same protein, to understand better the nature of packing defects in protein tertiary architectures. Our results show that cavity detection and consistency of detection are highly dependent on probe and cavity size, cavity position within the globular protein and the local "quality' (r.m.s. deviation) of structural consistency within the group. The consistency of solvent placement within cavities has also been examined. We provide guidelines for estimating the likelihood of a given cavity to be an actual packing defect or to be a result of experimental error.

Animals↗

Modeling studies of the change in conformation required for cleavage of limited proteolytic sites.

Previous analyses of limited proteolytic sites within native, folded protein structures have shown that a significant conformational change is required in order to facilitate binding into the active site of the attacking proteinase. For the serine proteinases, the optimum conformation to match the proteinase binding-site geometry has been well characterized crystallographically by the conserved main-chain geometry of the reactive site loops of their protein inhibitors. A good substrate must adopt a conformation very similar to this "target" main-chain conformation prior to cleavage. Using a "loop-closure" modeling approach, we have tested the ability of a set of tryptic-limited proteolytic sites to achieve this target conformation and further tested their suitability for cleavage. The results show that in most cases, significant changes in the conformation of at least 12 residues are required. All the putative tryptic cleavage sites in 1 protein, elastase, were also modeled and tested to compare the results to the actual nicksite in that protein. These results strongly suggest that large local motions proximate to the scissile bond are required for proteolysis, and it is this ability to unfold locally without perturbing the overall protein conformation that is the prime determinant for limited proteolysis.

Algorithms↗

Cavities and packing at protein interfaces.

An analysis of internal packing defects or "cavities" (both empty and water-containing) within protein structures has been undertaken and includes 3 cavity classes: within domains, between domains, and between protein subunits. We confirm several basic features common to all cavity types but also find a number of new characteristics, including those that distinguish the classes. The total cavity volume remains only a small fraction of the total protein volume and yet increases with protein size. Water-filled "cavities" possess a more polar surface and are typically larger. Their constituent waters are necessary to satisfy the local hydrogen bonding potential. Cavity-surrounding atoms are observed to be, on average, less flexible than their environments. Intersubunit and interdomain cavities are on average larger than the intradomain cavities, occupy a larger fraction of their resident surfaces, and are more frequently water-filled. We observe increased cavity volume at domain-domain interfaces involved with shear type domain motions. The significance of interfacial cavities upon subunit and domain shape complementarity and the protein docking problem, as well as in their structural and functional role in oligomeric proteins, will be discussed. The results concerning cavity size, polarity, solvation, general abundance, and residue type constituency should provide useful guidelines for protein modeling and design.

Amino Acids↗

Intramolecular cavities in globular proteins.

An analysis of internal cavities in 121 protein chains has been undertaken to improve the characterization of their occurrence, morphology and role in protein tertiary structure, including an analysis of the optimal probe size for use in their detection. A number of basic cavity characteristics were elucidated. Cavities are non-artefactual and apparently independent of the method of structure determination, resolution and refinement of the data. Overall cavity volume increases with protein size and yet constitutes only a small fraction of the total protein volume but cavities are nearly always present in proteins > 100 residues in size. They are most commonly found in the protein core. 'Empty' and solvent-containing cavities have been compared and solvated cavities found to possess a more polar surface; the two classes are also seen to exhibit different amino acid type and secondary structural preferences. In general, residues that enclose cavities do not display any extra local mobility relative to their surrounding environments. Water-containing cavities do not impose volume restrictions upon their internal solvent beyond that of bulk solvent and permit good hydrogen bonding. These results should prove useful in protein modelling and design.

Amino Acids↗