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R D Walter

Publications and source records attributed to R D Walter.

At least 73 records · Page 4Linked to original sources

Differential susceptibility of filarial and human erythrocyte glutathione reductase to inhibition by the trivalent organic arsenical melarsen oxide.

The glutathione reductases (GR) from two cattle filariae (Setaria digitata and Onchocerca gutturosa) have been isolated and their properties have been compared to those of human erythrocyte GR. In general, the enzymes appear to be very similar with respect to substrate-specificity for glutathione disulfide and NADPH, molecular mass (97 kDa vs. 98 kDa) and oligomeric organisation (subunit size of 51 kDa vs. 50 kDa). However, studies on the inhibition of the enzymes by the trivalent melaminophenyl arsenical melarsen oxide revealed that the human GR is less susceptible to inhibition by the arsenical than the filarial enzymes. Further, it was found that the mechanism of inactivation differs for the host and filarial enzymes. The human enzyme is inhibited by melarsen oxide in a competitive manner with a Ki of 23.7 microM, whereas the filarial GRs are inhibited in two stages: an immediate partial inactivation followed by a time-dependent stage with saturable pseudo-first-order kinetics. Ki values for the S. digitata and O. gutturosa GRs are 38.3 microM and 4.5 microM, respectively, with maximum second-stage inactivation rates of 1.0 x 10(-4) s-1 and 24.3 x 10(-4) s-1, respectively. These differences between host and parasite enzyme might reflect differences in the primary and secondary structure of the proteins which might be exploitable for the design of new specific macrofilaricidal drugs.

Animals↗

Purification and characterization of gamma-glutamylcysteine synthetase from Ascaris suum.

We have purified and characterized the Ascaris suum gamma-glutamylcysteine synthetase, the rate-limiting step in the glutathione biosynthesis. The purified enzyme exhibited a specific activity of 18 U (mg protein)-1. Estimation of the molecular mass of the native enzyme by FPLC on Superdex S-200 revealed the presence of two enzyme activity peaks corresponding to molecular masses of 100 and 70 kDa. The higher-molecular-mass component could be dissociated by repeated gel filtration into the 70-kDa protein which is the enzymatically active subunit. The apparent Km values of the A. suum enzyme for L-aminobutyrate, L-cysteine and L-glutamate were 0.31, 0.41 and 0.94 mM, respectively. D,L-Buthionine-S,R-sulfoximine and cystamine showed time-dependent irreversible inhibitory effects on the A. suum enzyme activity with Ki values of 0.05 and 1.11 microM, respectively. The Ki values for the corresponding enzyme from rat kidney with D,L-buthionine-S,R-sulfoximine and cystamine were 7.19 and 22.2 microM, respectively. The time of half-inactivation of the enzyme at infinite concentration of D,L-buthionine-S,R-sulfoximine, tau 50, was determined to be 3.1 and 1.34 min, for the parasite and mammalian enzymes respectively. For cystamine, a tau 50 value of 3.32 min for the A. suum gamma-glutamylcysteine synthetase was determined, while a value of 2 min in case of rat kidney enzyme was found. The A. suum enzyme activity was competitively inhibited by glutathione with a Ki value of 0.11 mM.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Plasmodium falciparum glutathione reductase exhibits sequence similarities with the human host enzyme in the core structure but differs at the ligand-binding sites.

The homodimeric flavoenzyme glutathione reductase (GR) which catalyzes the reduction of glutathione disulfide is a cornerstone of the malaria parasite antioxidant defense and repair mechanisms. Here we report on the identification of the GR gene from Plasmodium falciparum. A 1.4-kb fragment of the gene was amplified by polymerase chain reaction (PCR). Using this PCR fragment as a probe a full length cDNA clone (2085 bp) was isolated from a P. falciparum gametocyte library. The deduced amino acid sequence of 541 residues shows an overall identity of 35% when compared to the human enzyme. Most amino acids of known function are identical. However, notable differences between human and parasite protein occur in the glutathione-binding pocket (for instance, Glu374 instead of the expected basic residue) and at the intersubunit contact area. These regions are of particular interest since they represent binding sites of known GR inhibitors. Consequently, parasite GR can serve as a target structure for the design of antimalarial drugs.

Amino Acid Sequence↗

[Antimalarial active 10 H-indolo(3,2-b)quinolin-11-yl-amine. 2. Chloroquine analogs].

The quinolones 1b and 1c react with tosylisocyanate to yield the tosylamino quinolines 2b and 2c, while 1a under the same conditions gives the carbamate 5. Decarboxylation of 5 affords 2a. The mono and bis alkylated products 3 and 6 are received from 2b. The N-tosyl derivatives 2b and 3 rearrange to form the C-tosyl compounds 7 by heating with polyphosphoric acid (PPA) while 2c is hydrolized to 8c. 8 are isolated either from 2 using sulfuric acid 90% or from the 11-chloro-quinolines 9 melting in a mixture of ammonium chloride and acetate. The chloroquine analogues 4 are obtained from the 9-hydrochlorides with the dihydrochloride of the novaldiamine base. The quaternary salt 10 prepared by methylation of 9b reacts with the base in ethanol to yield 11. 4c inhibits the multi-resistant Plasmodium falciparum strain K-1 stronger than chloroquine.

Aminoquinolines↗

Characterization of enzymatically active Onchocerca volvulus Cu/Zn superoxide dismutase expressed in Escherichia coli.

The Onchocerca volvulus superoxide dismutase was expressed in Escherichia coli, using a protocol designed to produce the native enzyme rather than a fusion protein. The recombinant O. volvulus superoxide dismutase (rOVSOD) was found in the cytosol of the disrupted bacteria and represented > 10% of the total bacterial protein. The enzyme was purified to homogeneity using DEAE-Sepharose chromatography, followed by phenyl-Sepharose chromatography. The rOVSOD was enzymatically active which was demonstrated by its reactivity with O2.- produced either by the xanthine-xanthine oxidase system or by stimulated eosinophils. The specific activity was determined to be 4668 U mg-1. This activity could be blocked by rabbit antiserum raised against the rOVSOD. The maximal activity was obtained upon supplementation of the bacterial growth media and enzyme buffer with copper and zinc ions. Activity characteristics in the presence of inhibitors was also characteristic of a Cu/Zn superoxide dismutase. The rOVSOD has an apparent subunit molecular mass of 16,000 in SDS-PAGE. The active enzyme behaves as a dimer of 32 kDa as determined by gel filtration.

Amino Acid Sequence↗

A novel type of glutathione S-transferase in Onchocerca volvulus.

Onchocerca volvulus is a pathogenic human filarial parasite which, like other helminth parasites, is capable of evading the host's immune responses by a variety of defense mechanisms which are likely to include the detoxification and repair mechanisms of the enzyme glutathione S-transferase (GST). In this study, we show that one of the previously described GSTs from O. volvulus appears to possess the characteristics of a secreted enzyme. When the complete O. volvulus GST1 (OvGST1) sequence presented here is compared with those of other GSTs, 50 additional residues at the N terminus are observed, the first 25 showing characteristics of a signal peptide. This is consistent with the N-terminal sequence data on the native mature enzyme which begins at amino acid 26, based on the deduced protein sequence from the cDNA. The native protein, without the signal peptide sequence, possesses a 24-amino-acid extension not present in other GSTs. The deduced amino acid sequence of the OvGST1 cDNA clone was shown to possess four potential N-glycosylation sites. Digestion of O. volvulus homogenate with endoglycosidase, followed by detection of OvGST1 with specific antibody, indicated that the enzyme possesses at least two N-linked oligosaccharide chains. Gel filtration of the Escherichia coli-produced recombinant OvGST1 showed that it is enzymatically active as a nonglycosylated dimer. OvGST1 is found in the media surrounding adult worms maintained in culture, indicating that, in vitro, this enzyme is released from the worm. The strongest immunostaining for OvGST1 was observed in the outer cellular covering of the adult worm body, the syncytial hypodermis, especially in the interchordal hypodermis, where the peripheral membrane forms a series of lamellae which run into the outer zone of the hypodermal cytoplasm.

Amino Acid Sequence↗

[Antimalarial 10 H-indolo(3,2-b)quinolin-11-yl-amines. 1. Phenol-Mannich-bases of the amodiaquine and cycloquine type].

The 11-chloro-quinoline derivatives 3 react with 4-aminophenol and the mono- and bis-phenol-Mannich-bases 6 to yield the 10H-indolo[3,2-b]quinoline-11-yl-amines 4 and 7. The amodiaquine analogue 7a as the best of all compounds shows a comparable activity with choroquine and inhibits a multiresistant Plasmodium falciparum strain at the same concentration. Compound 7e from the cycloquine-type was selected for an in vivo antitumor screening programme.

Aminoquinolines↗

Biogenic-amine acetylation: an additional function of the N-acetyltransferase from Fasciola hepatica.

The previously described polyamine N-acetyltransferase from Fasciola hepatica has been observed to have an additional function, the acetylation of biogenic amines. The activities for biogenic amines, diamines and polyamines were in a constant ratio throughout the purification process. Biogenic amines found to be substrates for the enzyme included tyramine, tryptamine, beta-phenylethylamine and histamine, with Km values of 0.12 mM, 0.26 mM, 0.30 mM and 0.76 mM respectively. Octopamine, 5-hydroxytryptamine and alpha-phenylethylamine were also acceptable as substrates, though to a lesser degree. The optimum pH for biogenic-amine acetylation was 7.5, and CoA was inhibitory to the process, with a Ki of 5.5 microM. N-Acetylation appears to play a major role in the amine metabolism of this trematode. We presume that acetylation represents the process by which the parasite inactivates excess amines.

Acetylation↗

The Onchocerca volvulus mRNAs for a hsp70, a collagen-like protein and a ribosomal protein possess a 5' spliced leader sequence.

To detect and analyse Onchocerca volvulus mRNAs possessing a spliced leader (SL) sequence, a SL cDNA library was constructed from O. volvulus RNA using a PCR method. Three of the sixty cDNAs analysed displayed significant homology to a known sequence. These cDNAs encode a hsp70, a collagen-like protein and a 60S ribosomal protein. The remaining cDNAs analysed either encoded proteins with no apparent homology to known sequences or they appeared to be generated from RNAs with an internal SL and did not possess an open reading frame.

Amino Acid Sequence↗

Polyamine metabolism in Acanthamoeba culbertsoni.

1,3-Diaminopropane has been identified as the major polyamine of Acanthamoeba culbertsoni. N-acetylputrescine and spermidine were present in appreciable amounts and putrescine as well as N-acetylspermidine were also detected, but spermine was absent. Changes in polyamine levels were observed during the growth of amoebae. Ornithine decarboxylase activity was detected in cell-free extracts but there was very low activity of arginine and lysine decarboxylases. A potent polyamine oxidase was demonstrated which preferentially acted on N8-acetyl-spermidine as the substrate while N1-acetylspermidine was a poor substrate; free polyamines did not serve as a good substrate for this enzyme. Active uptake of polyamines by the amoebae was also demonstrated.

Acanthamoeba↗

Reversal of chloroquine resistance in Plasmodium falciparum by CDR 87/209 and analogues.

The spreading of resistance towards chloroquine has diminished its value as a potent and safe drug in malaria endemic areas. Recent reports on the reversal of chloroquine resistance in the malaria parasite Plasmodium falciparum in vitro and in vivo by verapamil, desipramine and other Ca(2+)-channel blockers and antidepressants has initiated a strategy for chemotherapy by treatment with chloroquine in combination with a drug resistance modulator. Described here is a class of modulators of distinct structure which reverse chloroquine resistance in a different manner. Contrary to verapamil and desipramine, CDRI 87/209, the most potent compound of this new class and used as a chemical lead, did not restore chloroquine accumulation in the resistant parasites, thereby indicating that besides the proposed blockade of drug efflux other mechanisms are vulnerable targets for a chemotherapeutic approach towards drug resistance. Similar to the former modulators, CDRI 87/209 showed only weak intrinsic plasmodicidal activity and the increase of drug susceptibility was restricted to resistant plasmodia.

Animals↗

Purification and characterization of polyamine oxidase from Ascaris suum.

The interconversion of polyamines in the parasite nematode Ascaris suum by a novel type of polyamine oxidase was demonstrated. The nematode enzyme was clearly distinguishable from monoamine and diamine oxidases as well as from the mammalian polyamine oxidase, as shown by the use of the specific inhibitors pargyline, aminoguanidine and MDL 72527 respectively. All three inhibitors had no effect on the parasite polyamine oxidase, and the enzyme did not accept diamines such as putrescine, cadaverine or histamine as substrates. The parasite polyamine oxidase selectively oxidizes spermine and spermidine but not N-acetylated polyamines, whereas the mammalian tissue-type polyamine oxidase shows preference for the N-acetylated polyamines. These results suggest a regulatory function of the nematode polyamine oxidase in the degradation and interconversion of polyamines in parasite nematodes. The enzyme was purified to homogeneity by gel filtration, preparative isoelectric focusing and subsequent affinity chromatography on spermine- and berenil-Sepharose 4B. With respect to reaction type, the prosthetic group FAD, the molecular mass (66 kDa) and the contents of thiol and carbonyl groups, the polyamine oxidase from A. suum is similar to the isofunctional enzyme of mammalian tissue.

Animals↗

Identification of circulating parasite acetylcholinesterase in human and rodent filariasis.

In the present study, the enzyme acetylcholinesterase (AChE) from filarial parasites was identified in sera from humans infected with Onchocerca volvulus as well as in Mastomys natalensis infected with Brugia pahangi. The enzyme was present in immune complexes precipitated with cold 4% polyethylene glycol. The infected sera showed 3-4 times more AChE activity than did normal sera, and enzyme activity could be demonstrated in 5% polyacrylamide gels by specific staining. The enzyme from infected serum showed 3 times more activity when acetylthiocholine was used as the substrate as compared with butyrylthiocholine, whereas the enzyme activity present in normal serum was low and did not show this substrate specificity. Immunoprecipitation assays confirmed the presence of anti-AChE antibodies in the infected serum. The enzyme was further analysed by enzyme-linked immunosorbent assay and immunoblotting with rabbit antibodies to B. malayi AChE. Immunoblotting of the B. pahangi-infected serum revealed two closely located bands at about 200 kDa and one 95-kDa band, whereas in O. volvulus-infected serum, only one specific band was observed at about 200 kDa. The identification of parasite AChE may be particularly useful for diagnosis of the disease or for the study of the involvement of this enzyme in the host-parasite relationship.

Acetylcholinesterase↗