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R W Pickersgill

Publications and source records attributed to R W Pickersgill.

At least 37 records · Page 2Linked to original sources

An unequivocal example of cysteine proteinase activity affected by multiple electrostatic interactions.

The role of electrostatic interactions between the ionizable Asp158 and the active site thiolate-imidazolium ion pair of some cysteine proteinases has been the subject of controversy for some time. This study reports the expression of wild type procaricain and Asp158Glu, Asp158Asn and Asp158Ala mutants from Escherichia coli. Purification of autocatalytically matured enzymes yielded sufficient fully active material for pH (kcat/Km) profiles to be obtained. Use of both uncharged and charged substrates allowed the effects of different reactive enzyme species to be separated from the complications of electrostatic effects between enzyme and substrate. At least three ionizations are detectable in the acid limb of wild type caricain and the Glu and Asn mutants. Only two pKa values, however, are detectable in the acid limb using the Ala mutant. Comparison of pH activity profiles shows that whilst an ionizable residue at position 158 is not essential for the formation of the thiolate-imidazolium ion pair, it does form a substantial part of the electrostatic field responsible for increased catalytic competence. Changing the position of this ionizable group in any way reduces activity. Complete removal of the charged group reduces catalytic competence even further. This work indicates that hydronations distant to the active site are contributing to the electrostatic effects leading to multiple active ionization states of the enzyme.

Amino Acid Sequence↗

Modification of the head-group selectivity of porcine pancreatic phospholipase A2 by protein engineering.

On the basis of the three-dimensional structures of phospholipid and porcine pancreatic phospholipase A2 (pla2), it was predicted that the removal of a negative charge in the hydrophilic region of the phospholipid binding site would influence the head-group selectivity of porcine pancreatic pla2. To test this prediction, glutamic acid 46 was changed to leucine by site-directed mutagenesis. The E46L mutant, expressed in Escherichia coli, was purified and characterized. The mutation did not affect the activity toward the mixed micellar substrate, but the activity of E46L toward DiC12-P, which has two negative charges on the head group, was three times higher than that of DiC12-PC, which carries no net charge in the head group. The native pla2 was inhibited by the product(s) released from DiC12-P but not the mutant enzyme. Kinetic analysis revealed that the E46L mutant and the native pla2 had comparable affinities (Km) toward monomeric and micellar phospholipids of zwitterionic type while the activity (kcat) of E46L, toward the same substrates, was approximately 50% lower compared to that of native pla2. When micellar DiC12-P was used as a substrate, the Kmapp value for E46L was four times lower and the kcatapp/kmapp was 5-fold higher than those of native pla2. However, the kinetic parameters of mutant and native pla2s remained unchanged for monomeric HEPG, with one negative charge in the head group. Thus, we have modified the head-group selectivity of porcine pancreatic pla2 by protein engineering.

Animals↗

Kinetic analysis of papaya proteinase omega.

Papaya proteinase omega (pp omega) has been purified from dried latex both by immunoaffinity and traditional methods. Kinetic analysis revealed that (1), the pp omega-catalysed hydrolysis of N-benzoyl-L-arginine p-nitroanilide (BApNA) has a lower specificity (kcat/Km) than the same reaction catalysed by papain; (2), the pp omega-catalysed hydrolysis of a tripeptide substrate having phenylalanine at the second position (S2-site) showed a more similar specificity to that catalysed by papain; (3), the significant difference between the two enzymes is that steady state kinetics with both L-BApNA and a tripeptide enables the identification in pp omega of other ionizations affecting binding. The active sites of papain and pp omega can therefore be distinguished by pH-dependence of kcat/Km.

Amino Acid Sequence↗

Nucleotide sequence and expression in Escherichia coli of cDNAs encoding papaya proteinase omega from Carica papaya.

We have cloned and sequenced two similar, but distinct, cDNAs from both fruit and leaf tissues of Carica papaya. The C-terminal portion of the predicted amino acid (aa) sequence of one of the clones has complete identity with the mature enzyme sequence of the cysteine proteinase papaya proteinase omega (Pp omega). The second clone contains ten individual bp changes compared with the first and encodes a protein with three single-aa substitutions, only one of which is located in the mature sequence, but most noticeably carries an additional 19-aa C-terminal extension. The clones encode pre-pro precursor isoforms of Pp omega. The former of these clones has been expressed in Escherichia coli using a T7 polymerase expression system to produce insoluble pro-enzyme which has been solubilized and refolded to yield auto-activable pro-Pp omega.

Amino Acid Sequence↗

Factors effecting the thermostability of cysteine proteinases from Carica papaya.

Thermal denaturation of four Carica papaya cysteine proteinases (papain, chymopapain, papaya proteinases 3 and 4) was studied as a function of pH using high-sensitivity differential scanning calorimetry. The ratios of calorimetric enthalpy to Van't Hoff enthalpy suggest that, for all these proteins, denaturation occurs as a non two state process, via an intermediate structure. Differences in the thermal stabilities of the proteinases; chymopapain > papaya proteinase 3 > papain > papaya proteinase 4, were correlated to their amino acid sequence to explain the observations in terms of mobility and specific residue mutation. Three-dimensional structures of papain and papaya proteinase 3 were similarly used to illustrate the influence of atomic mobility on stability.

Calorimetry, Differential Scanning↗

Crystals of beta-xylanase from Aspergillus oryzae.

An endo-xylanase was isolated from the culture of fungus Aspergillus oryzae variant D5. The purified enzyme had a molecular weight of 24,000 and the isoelectric point of 3.6. Xylanase crystals were obtained from a polyethylene glycol 6000 solution by the hanging-drop method. Seeding was used for the enlargement of the crystal size. Crystals belong to the monoclinic space group P2(1) with cell dimensions a = 54.9 A, b = 74.5 A, c = 50.8 A, and beta = 108.7 degrees. Crystals diffract beyond 2.5 A resolution.

Aspergillus oryzae↗

Crystallization and preliminary X-ray analysis of a thermophillic Bacillus xylanase.

A xylanase of M(r) 20,700 from the hyperproductive mutant D3 of the thermophillic Bacillus, strain XE has been purified and crystallized from 2-methyl-2,4-pentanediol. The unit cell is triclinic with a = 48.5 A, b = 51.5 A, c = 72.6 A, alpha = 90.4 degrees, beta = 95.4 degrees, gamma = 92.3 degrees (all +/- 0.2). There are four molecules in the asymmetric unit related by 222 symmetry. These crystals diffract to at least 2.5 A using X-rays from a rotating anode generator.

Bacillus↗

Molecular dynamics simulation of a phospholipase A2-substrate complex.

We have used knowledge of the three-dimensional structure of phospholipids and phospholipases A2 together with biochemical data, computer graphics modelling and a 48 ps molecular dynamics simulation to predict the structure of a phospholipase A2-substrate complex. There is remarkable similarity between this predicted structure of enzyme-substrate complex and the structure that can be deduced from the observed enzyme-inhibitor complex. Molecular dynamics simulation highlights the importance of the calcium-ion in substrate binding and the persistence of the His-48 to water-hydrogen bond is compatible with the proposed role of this water molecule as the nucleophile in catalysis.

Animals↗

Crystallization and preliminary X-ray analysis of the catalytic domain of xylanase a from Pseudomonas fluorescens subspecies cellulosa.

The catalytic domain of the xylan-degrading enzyme xylanase A, from Pseudomonas fluorescens subspecies cellulosa, has been expressed in Escherichia coli and crystallized. The crystals are well ordered and diffract to 1.8 A using X-rays generated at the Photon Factory in Japan. The crystals are orthorhombic, space group P2(1)2(1)2(1) with a = 95.7 A, b = 97.1 A and c = 149.8 A (all +/- 0.2 A). The similarity of the a and b cell edges, the intensity of the reflections along c* and the self rotation function results suggest a pseudo-tetragonal arrangement of molecules in the unit cell. There are probably four molecules in the asymmetric unit.

Binding Sites↗

The segmented anisotropic refinement of monoclinic papain by the application of the rigid-body TLS model and comparison to bovine ribonuclease A.

The anisotropic displacements of selected rigid groups in monoclinic papain have been refined from X-ray diffraction data by application of the rigid-body TLS model. The rigid groups chosen were the aromatic side chains of tryptophan, tyrosine, histidine and phenylalanine, and the planar carboxylic and guanidinium side chains of aspartic acid, glutamic acid, glutamine, asparagine and arginine. The derived translation and libration tensors have been compared with those previously derived for bovine ribonuclease A and provide evidence for different modes and anisotropies of displacement over the two proteins.

Amino Acids↗

A novel method for the purification of porcine phospholipase A2 expressed in E. coli.

Porcine phospholipaseA2 expressed in E. coli as a fusion protein was isolated, renatured and specifically cleaved by trypsin as described in (1). Active phospholipaseA2, was purified to homogeneity on a column of PBE-94 over a pH region 7.4-4.5. Using this method, several phospholipase A2 mutant enzymes have now been purified in a single step and all behaved identically during chromatofocusing. The method will therefore be extremely useful not only for those interested in understanding the structure-function relationships of phospholipaseA2 but also for preparing the enzyme in large quantities for industrial and pharmaceutical purposes.

Animals↗

Modification of the stability of phospholipase A2 by charge engineering.

Electrostatic interactions play an important role in stabilizing the folded conformation of globular proteins. Here we predict the change in stability of charge engineered mutants, construct these mutants and compare the predicted change in stability with that observed. The change in stability was correctly predicted for two of the three mutants and the factors responsible for the discrepancy between observation and prediction for the third mutant are discussed.

Enzyme Stability↗

Changes in activity of porcine phospholipase A2 brought about by charge engineering of a major structural element to alter stability.

We have modified the stability of porcine phospholipase A2 by charge engineering. The mutations are situated at the N-terminal of a major helix and are N89D and N89D/E92Q. This engineering has significantly altered the activity of the enzyme to aggregated and monomeric substrates. A N89D/E92K mutant is more stable but considerably less active than wild type. An N89D mutant is more stable and of similar activity to wild type. The substantial change in activity may be due to direct interaction of residue 92 with aggregated substrate or may be via second calcium binding. Second calcium binding may be more probable as activity against monomers is also affected. Additional calcium binding may therefore be an important way of manipulating the activity of phospholipase A2.

Animals↗

Preliminary crystallographic data for protease omega.

Protease omega from Carica papaya L. has been purified and crystallized. The crystals are trigonal, space group P3(1)12 (or P3(2)12), with a = 7.42 +/- 0.02 nm, c = 7.79 +/- 0.02 nm with one molecule in the asymmetric unit. The crystals diffract to 0.19-nm resolution using synchrotron radiation.

Crystallography↗

The electrostatic fields in the active-site clefts of actinidin and papain.

The active sites of actinidin (EC 3.4.22.14) and papain (EC 3.4.22.2) display different reactivity characteristics to probes targeted at the active-site cysteine residue despite the close structural similarity of their active sites. The calculated electrostatic fields in the active-site clefts of actinidin and papain differ significantly and may explain the reactivity characteristics of these enzymes. Calculation of electrostatic potential also focuses attention on the electrostatic properties that govern formation of the active-site thiolate-imidazolium ion-pair. These calculations will guide the modification of the pH-activity profile of the cysteine proteinases by site-directed mutagenesis.

Binding Sites↗

The three dimensional structure of sheep liver 6-phosphogluconate dehydrogenase at 2.6 A resolution.

The three-dimensional structure of sheep liver 6-phosphogluconate dehydrogenase has been determined at 2.6 A resolution by X-ray crystallographic studies. The amino acid sequence of the enzyme is now known and can be fitted to a modified electron density map. Use of 6 A electron density maps and the results of chemical modification experiments allows description of the active site and identification of residues which may be implicated in the binding of co-enzyme and substrate.

Animals↗