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M Laskowski

Publications and source records attributed to M Laskowski.

At least 55 records · Page 3Linked to original sources

Protein inhibitors of serine proteinases--mechanism and classification.

Protein proteinase inhibitors are widely distributed in plants, animals and microorganisms. They can be conveniently grouped since most frequently they inhibit proteinases belonging only to a single mechanistic class. Protein inhibitors of serine proteinases have been most extensively studied. They are strictly competitive inhibitors forming 1:1 complexes with the enzymes they inhibit. In these complexes, all activities of the enzyme are completely abolished. The inhibitors are substrates for the enzyme they inhibit at a unique peptide bond called the reactive site peptide bond (one for each inhibitory domain). However, compared to normal substrates where the enzyme-substrate and enzyme-product complexes dissociate very readily here, the complexes are very stable. Serine proteinase inhibitors can be divided into at least 13 families. Within each family the position of the reactive site and the closure of disulfide bridges can be inferred by homology. In enzyme-inhibitor complexes, about 10-15 residues of the inhibitor are in contact with the enzyme. Their specific nature strongly affects both the strength and the specificity of enzyme-inhibitor interaction. In all cases where the sequences of many inhibitors from the same family can be compared, the contact residues are not strongly conserved--instead, they are hypervariable. This raises major problems but also offers huge opportunities to those concerned with the role of inhibitors in biology and in medicine.

Amino Acid Sequence↗

Turkey ovomucoid third domain inhibits eight different serine proteinases of varied specificity on the same ...Leu18-Glu19 ... reactive site.

We show that eight different serine proteinases--bovine chymotrypsins A and B, porcine pancreatic elastase I, proteinase K, Streptomyces griseus proteinases A and B, and subtilisins BPN' and Carlsberg--interact with turkey ovomucoid third domain at the same Leu18-Glu19 peptide bond, the reactive site of the inhibitor. Turkey ovomucoid third domain was converted to modified (the reactive site peptide bond hydrolyzed) form as documented by sequencing. Complexes of all eight enzymes both with virgin and with modified inhibitor were prepared. All 16 complexes were subjected to kinetically controlled dissociation, and all 16 produced predominantly virgin (greater than 90%) inhibitor, thus proving our point. During this investigation, we found that both alpha-chymotrypsin and especially S. griseus proteinase B convert virgin to modified turkey ovomucoid third domain, even in the pH range 1-2, a much lower pH than we expected. We have also measured rate constants kon and kon* for the association of virgin and modified turkey ovomucoid third domain with several serine proteinases. The kon/kon* ratio is 4.8 X 10(6) for chymotrypsin, but it is only 1.5 for subtilisin Carlsberg. A number of generalizations concerning reactive sites of protein proteinase inhibitor are proposed and discussed.

Amino Acid Sequence↗

The crystal and molecular structure of the third domain of silver pheasant ovomucoid (OMSVP3).

OMSVP3 and OMTKY3 (third domains of silver pheasant and turkey ovomucoid inhibitor) are Kazal-type serine proteinase inhibitors. They have been isomorphously crystallized in the monoclinic space group C2 with cell dimensions of a = 4.429 nm, b = 2.115 nm, c = 4.405 nm, beta = 107 degrees. The asymmetric unit contains one molecule corresponding to an extremely low volume per unit molecular mass of 0.0017 nm3/Da. Data collection was only possible for the OMSVP3 crystals. Orientation and position of the OMSVP3 molecules in the monoclinic unit cells were determined using Patterson search methods and the known structure of the third domain of Japanese quail ovomucoid (OMJPQ3) [Papamokos, E., Weber, E., Bode, W., Huber, R., Empie, M. W., Kato, I. and Laskowski, M., Jr (1982) J. Mol. Biol. 158, 515-537]. The OMSVP3 structure has been refined by restrained crystallographic refinement yielding a final R value of 0.199 for data to 0.15 nm resolution. Conformation and hydrogen-bonding pattern of OMSVP3 and OMJPQ3 are very similar. Large deviations occur at the NH2 terminus owing to different crystal packing, and at the C terminus of the central helix, representing an intrinsic property and resulting from amino acid substitutions far away from this site. The deviation of OMSVP3 from OMTKY3 complexed with the Streptomyces griseus protease B is very small [Fujinaga, M., Read, R. J., Sielecki, A., Ardelt, W., Laskowski, M., Jr and James, M. N. G. (1982) Proc. Natl Acad. Sci. USA, 79, 4868-4872].

Animals↗

The squash family of serine proteinase inhibitors. Amino acid sequences and association equilibrium constants of inhibitors from squash, summer squash, zucchini, and cucumber seeds.

Six amino acid sequences for trypsin inhibitors isolated from squash, summer squash, zucchini, and cucumber seeds were determined. All these inhibitors along with the two previously sequenced squash inhibitors (1) form the squash inhibitor family. The striking characteristic of the family is that its member inhibitors are very small (29-32 residues, 3 disulfide bridges). The association equilibrium constants with bovine beta trypsin for 6 squash family inhibitors were determined and range from 5.9 X 10(10) to 9.5 X 10(11) M-1.

Amino Acid Sequence↗

Formation of covalent hybrids from amino-terminal and carboxy-terminal fragments of two ovomucoid third domains.

Turkey ovomucoid third domain and Gambel's quail ovomucoid third domain were converted to their modified forms by specific hydrolysis of the Leu18-Glu19 reactive site peptide bond. The modified inhibitors were reduced, yielding in each case two chains, the NH2-terminal 1-18 and COOH-terminal 19-56, which could be separated by gel exclusion chromatography under reducing conditions. The chains were then converted to mixed disulfides with glutathione. The NH2-terminal peptide of turkey domain was mixed with COOH peptide of Gambel's quail domain and allowed to form interchain disulfide bridges to produce "Turbel" hybrid. The hybrid was obtained in 20% yield and was active as a proteinase inhibitor. This modified hybrid could be purified to virtual homogeneity by ion-exchange chromatography. The reactive site peptide bond was then enzymatically synthesized yielding virgin "Turbel" hybrid. The amino acid sequence of this hybrid was in exact accord with expectations. We have shown further that the reactive site hydrolysis, disulfide reduction, reoxidation, and reactive site bond resynthesis cycle do not affect Kassoc for chymotrypsin. Thus, if the results described here are general, we have a useful method for generating many avian ovomucoid third domain variants.

Amino Acid Sequence↗

Amino-acid sequence of two trypsin isoinhibitors, ITD I and ITD III from squash seeds (Cucurbita maxima).

The amino-acid sequences of two trypsin isoinhibitors, ITD I and ITD III, from squash seeds (Cucurbita maxima) were determined. Both isoinhibitors contain 29 amino-acid residues, including 6 half cystine residues. They differ only by one amino acid. Lysine in position 9 of ITD III is substituted by glutamic acid in ITD I. Arginine in position 5 is present at the reactive site of both isoinhibitors. The previously published sequence of ITD III has been shown to be incorrect.

Amino Acid Sequence↗

Thermodynamics and kinetics of the hydrolysis and resynthesis of the reactive site peptide bond in turkey ovomucoid third domain by aspergillopeptidase B.

1. Aspergillopeptidase B rapidly hydrolyses the -Leu18-Glu19-reactive site peptide bond in turkey ovomucoid third domain (OMTKY3) within the pH-range of 4.0-8.4. The reaction proceeds to equilibrium between OMTKY3 and its modified form with the reactive site peptide bond cleaved (OMTKY3). 2. The dependence of the equilibrium constant (Khyd) on pH indicates that hydrolysis of the reactive site peptide bond apparently does not perturb the pK-values of any preexistent ionizable groups in OMTKY3. 3. The obtained Khyd0 value indicates that free energies of OMTKY3 and OMTKY3 are essentially the same. 4. Hydrolysis of the reactive site peptide bond by aspergillopeptidase B at neutral pH is about 60 times faster than the same reaction catalyzed by subtilisin (Carlsberg), the enzyme strongly inhibited by OMTKY3. 5. Resynthesis of the reactive site peptide bond at neutral pH catalyzed by aspergillopeptidase B (reverse reaction) is almost four orders of magnitude faster than the forward reaction.

Animals↗

Thermodynamics and kinetics of single residue replacements in avian ovomucoid third domains: effect on inhibitor interactions with serine proteinases.

Sequence determinations in our laboratory have yielded the primary structures of ovomucoid third domains from 35 avian species. From that list, 12 sequences could be arranged into a contiguous set such that each sequence differs from a second by a single amino acid replacement. For this set of domains and for five additional domains of special interest, we report here the association equilibrium constants for their binding with bovine alpha-chymotrypsin, elastase I, and subtilisin Carlsberg. The results are interpreted with the aid of the three-dimensional structure of highly homologous Japanese quail ovomucoid third domain and of computer-generated models of the complexes of the inhibitor with the respective enzymes. The results show that (i) changes in inhibitor residues other than the primary recognition residue (P1) even sequentially far from the reactive site, may exert large effects on association equilibrium constant values provided these residues make contact with the enzyme, (ii) changes in residues other than P1 often exert large differential effects toward the different enzymes, i.e., the same change can make the inhibitor stronger for one enzyme and weaker for another, (iii) the sign and to some extent the magnitude of the changes can be rationalized from the known structures of the inhibitor and the enzyme, (iv) changes in surface residues which do not contact the enzyme in complex are virtually without effect, and (v) glycosylated and nonglycosylated inhibitors have the same constants. For confirmation of the validity of the equilibrium constant comparisons in a few cases, the rate constants kon and kd were determined and the resultant calculated equilibrium constant values compared to the directly determined numbers. An additional test of validity is provided by experiments where a glycosylated domain of one species is allowed to compete with an unglycosylated domain of another for the same enzyme.

Amino Acid Sequence↗

Refined crystal structure of the molecular complex of Streptomyces griseus protease B, a serine protease, with the third domain of the ovomucoid inhibitor from turkey.

We have determined the crystal structure of the molecular complex between Streptomyces griseus protease B (SGPB), a bacterial serine protease, and the third domain of the ovomucoid inhibitor from turkey. Restrained-parameter least-squares refinement of the structure with the 1.8-A intensity data set has resulted in an R factor of 0.125. The carbonyl carbon atom of the reactive bond between Leu-18 and Glu-19 in the inhibitor lies at a distance of 2.71 A from the O gamma atom of the nucleophilic Ser-195 in SGPB; this distance is 0.5 A shorter than a normal van der Waals contact. Unlike the reactive bond in the pancreatic trypsin inhibitor complexed with bovine trypsin, the Leu--Glu bond of the ovomucoid inhibitor is not distorted from planarity towards a pyramidal configuration.

Animals↗

Large scale purification of isoinhibitors of trypsin from swine colostrum using zinc chelate chromatography and chromatofocusing.

Low molecular weight trypsin inhibitors were purified from swine colostrum on a large scale under mild conditions. Ammonium sulfate fractionation and metal chelate chromatography of zinc chelate Sepharose and phenyl Sepharose were used for removal of the bulk of proteins. The inhibitors showed only a weak hydrophobic interaction with phenyl Sepharose even in the presence of 1 M (NH4)2S04, and advantage was taken of this property to remove the inhibitors from contaminating colostrum proteins which remained tightly adsorbed to phenyl Sepharose under these conditions. The low and high molecular weight inhibitors were then separated by gel filtration on Bio-Gel P-300. The low molecular weight material was eluted in three major inhibitor fractions on DEAE-Sepharose. Chromatofocusing of these fractions provided greater resolution of the inhibitors, and several previously unreported inhibitor peaks were detected. The six major inhibitors purified by chromatofocusing were homogenous as judged by polyacrylamide gel electrophoresis in the presence and absence of sodium dodecyl sulfate. These inhibitors were composed of a single polypeptide chain with a molecular weight of 18,000 as determined by Sephacryl S-200 gel filtration and polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate and beta-mercaptoethanol. The specific activities of the pure inhibitors were approximately 30% higher than those previously reported.

Animals↗

An endonuclease activity of chicken erythrocyte nuclei and mononucleosomes.

Endogenous nuclease is present in the nuclear sap of chicken erythrocyte nuclei. This enzyme resembles the nuclease of mammalian nuclei in requirements for bivalent cations and in production of large chromatin fragments that gradually decrease in size, but differs in that the products do not go through the stage of discrete bands on gel electrophoresis. Endogenous nuclease and micrococcal nuclease are also detectable in mononucleosomes prepared from chicken erythrocytes with the aid of micrococcal nuclease. Both nucleases are extractable with 0.35 M NaCl, and both are inhibited by pTp. In the absence of Ca2+, the micrococcal nuclease is totally inactive, whereas the endogenous nuclease shows a low level of activity.

Animals↗

Covalently bound ribonucleotides in crab d(A-T) polymer.

In addition to the known 3% of G + C residues, samples of purified crab d(A-T) polymer from Cancer borealis contained small amounts (< 3%) of RNA. Aliquots of d(A-T)n were digested with crude venom, and the resultant nucleosides were analyzed by high pressure liquid chromatography (HPLC); up to one-half of all guanosine was rG. Other aliquots were exhaustively digested with purified pancreatic DNase I to produce 88% dinucleotides. HPLC fractionation of this dinucleotide mixture into individual components revealed the presence of three mixed dinucleotides: -dC-rG, -dT-rA, and -dT-rG. A third aliquot of d(A-T)n was hydrolyzed overnight with 0.3 M KOH at 37 degrees C; approximately equal amounts of ribomononucleotides (predominantly containing purines) and deoxyribomononucleotides (predominantely containg thymine) were produced. KOH-hydrolyzable ribonucleotides accounted for one-third to one-half of the total RNA. The rest of the ribonucleotides remained with longer d-fragments, presumably as 3'(2')-terminal nucleotides (. . .d-d-d-rp). It was concluded that crab d(A-T) polymer from C. borealis contains 1 to 3% of dispersed, covalently bound ribonucleotides. The results also suggest that the sugar specificity of DNase I may be limited to a nucleotide following the cleavage.

Alkaline Phosphatase↗