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Biomedical subjects

B Clement

Publications and source records attributed to B Clement.

At least 55 records · Page 3Linked to original sources

Microsomal N-oxygenation of adenine to adenine 1-N-oxide.

During investigations on the N-oxygenation of adenine (1) the enzymatic formation of adenine 1-N-oxide 3 was demonstrated for the first time. The identity of this metabolite was confirmed by its chromatographic behaviour and UV-spectrum recorded after HPLC separation. Adenine 1-N-oxide (3) and similar oxygenated derivatives of adenine were synthesized as reference substances. The enzymatic formation of 3 exhibits the typical characteristics of a reaction catalysed by microsomal mono-oxygenases. In induction experiments, an increase in the rate of formation of 3 after pretreatment with phenobarbital was observed. A participation of those isoenzymes of the cytochrome P-450 enzyme system which can be induced by phenobarbital is assumed.

Adenine↗

Biotransformation of benzamidine and benzamidoxime in vivo.

After administration of benzamidine (1) or benzamidoxime (2), respectively, to rats and rabbits, plasma from rats and rabbits as well as urine from rats were examined for the presence of benzamidoxime (2) or benzamidine (1). Some of the samples were worked-up directly and the others after enzymatic pretreatment with beta-glucuronidase or arylsulfatase, respectively. HPLC analysis was employed for the detection of the metabolites. After administration of 1, an in vivo N-hydroxylation of an amidine to an amidoxime was demonstrated for the first time. The metabolite 2 could only be detected after enzymatic cleavage of the glucuronide or sulfate, respectively, and only in plasma at a low concentration. After administration of benzamidoxime (2), on the other hand, benzamidine (1) was detected in very high concentrations in all biological samples. Benzamidine was present in the free state but indications for glucuronidization and sulfatation were also detectable. These investigations suggest that the benzamidoxime (2) formed by an in vivo N-hydroxylation undergoes ready retro-reduction but that further transformations of the metabolite 2, such as conjugation to a glucuronide or a sulfate, respectively, prevent complete back reaction. Furthermore, benzamide (3) could be detected as a transformation product in urine after administration of either 1 or 2.

Animals↗

In vitro oxygenation of N,N'-diphenylguanidines.

1. The enzymic C-oxygenation of N,N'-diphenylguanidine (DPG) to N-(4-hydroxyphenyl)-N'-phenylguanidine (4HPG) and the N-oxygenation of N,N'-bis-(pentafluorophenyl)-guanidine (BPG) to N"-hydroxy-N,N"-bis-(pentafluorophenyl)-guanidine (HBPG) is reported. 2. The metabolites were identified by t.l.c. and mass spectral analysis using synthetic reference compounds. 3. Rat and rabbit liver homogenates (9000 g supernatant and microsomes) were used as enzyme source. 4. The enzymic oxygenations were both O2 and NADPH dependent. NADPH could not be replaced by hydrogen peroxide. 5. 15N-n.m.r. spectroscopy was used to elucidate structure and tautomerism of BPG and HBPG.

Animals↗

N-hydroxylation of benzamidine to benzamidoxime by a reconstituted cytochrome P-450 oxidase system from rabbit liver: involvement of cytochrome P-450 IIC3.

Previous investigations have provided evidence for the participation of the cytochrome P-450 (P-450) enzyme system in the established N-hydroxylation of benzamidine to benzamidoxime by microsomal fractions from rabbit liver homogenates. In the present investigation, a representative mixture of P-450 isoenzymes was first isolated from the livers of untreated rabbits and then, together with purified NADPH-P-450 reductase, successfully used in a reconstituted enzyme system for the N-hydroxylation of benzamidine. In order to identify the participating isoenzyme, the P-450 mixture was separated by preparative high performance liquid chromatography on an anion exchange column. A P-450 fraction was obtained that was able to transform benzamidine with a specific activity > 3-fold higher than that of the P-450 mixture. The electrophoretic and spectral properties, as well as the inhibition by monoclonal antibodies against P-450 IIC3, show that the isolated P-450 fraction must consist of one or more variants of the isoenzyme P-450 IIC3. By means of reconstitution experiments with highly purified variants of P-450 IIC3 from rabbit liver and with purified variants of P-450 IIC expressed by recombinant Escherichia coli, the participation of the two variants P-450 IIC3 (6 beta H) and P-450 IIC3 (6 beta L) in the N-hydroxylation of benzamidine was unequivocally confirmed.

Animals↗

The reduction of 6-N-hydroxylaminopurine to adenine by xanthine oxidase.

The genotoxic and mutagenic compound 6-N-hydroxylaminopurine (HAP) can be detoxified in vitro by enzymatic N-reduction to adenine. This reaction is catalysed by both rat and rabbit liver cytosolic fractions. The formation of adenine was monitored using HPLC. Subcellular distribution of the activity, kinetic parameters and the influence of various cofactors and inhibitors were determined. The N-reduction required NADH or hypoxanthine or xanthine and was strongly inhibited by allopurinol. These observations suggested that the N-reductase activity is due to xanthine oxidase (EC 1.2.3.2). Moreover, the involvement of xanthine oxidase is supported by the observation that purified cow milk xanthine oxidase also catalysed this reaction. The N-reduction of HAP was inhibited only weakly by oxygen. In addition, the formation of adenine is catalysed by either the oxidase or dehydrogenase form of xanthine oxidase. Thus, this reaction should be significant for the in vivo detoxification of HAP.

Adenine↗

Genes encoding a histone H3.3-like variant in Arabidopsis contain intervening sequences.

Two genes encoding a particular H3 histone variant were isolated from Arabidopsis thaliana. These genes differ from the H3 genes previously cloned from Arabidopsis and other plants by several interesting properties: (1) the two genes are located close to each other; (2) their coding regions are interrupted by two or three small introns, the two closest to the initiation codon being located at the same place in the two genes; (3) another, long intron is located in the 5'-untranslated region just before the initiation codon of gene I as deduced from the sequence of several corresponding cDNAs, and very likely also of gene II; (4) these genes do not show preferential expression in organs containing meristematic tissues contrary to the classical intronless replication-dependent histone genes, thus suggesting that their expression is not replication-dependent; (5) the protein encoded by both genes is the same and corresponds to a minor H3 variant highly conserved among all the plant species studied up to now. All these characteristics are common with the animal replication-independent H3.3 histone genes and it is assumed that the genes described here are the first example of the equivalent H3.3 gene family in plants. Interestingly, the promoter regions of the two genes have the same general structure as the Arabidopsis intronless genes. Possible implications on the regulation of H3 genes expression are discussed.

Amino Acid Sequence↗

Metabolic N-hydroxylation of diminazene in vitro.

The two N-hydroxylated derivatives (amide oximes) and the corresponding amides of the trypanocidal diamidine diminazene (Berenil, CAS 536-71-0) have been synthesized. These reference compounds made it possible to investigate the in vitro metabolism of the amidine functionalities of diminazene. Diminazene metabolites were detected for the first time, in the form of the corresponding mono- and di(amide oxime), after incubation with 12000 g supernatants from rabbit liver homogenates and careful workup (freeze drying). The identification was based on the behavior in thin-layer chromatography and on comparison of the mass spectral data for the metabolites with those for synthetic material. The N-hydroxylation of diminazene showed the properties typical of a reaction catalyzed by a microsomal monoxygenase. Diminazene amides did not occur as metabolites. The di(amide oxime) of diminazene was tested for its trypanocidal and leishmanicidal activity on various laboratory strains of trypanosomes in mice and on Leishmania donovani in hamsters. The studies showed that the di(amide oxime) has a trypanocidal effect on various strains of trypanosomes (T. brucei, T. vivax, T. congolense and T. evansi), but this is distinctly weaker than that of diminazene. A diminazene-resistant strain of T. rhodesiense is also unaffected by the di(amide oxime). The di(amide oxime) also has a leishmanicidal effect, but this again is distinctly less than that of diminazene.

Animals↗

Identification of a 110-kDa nonintegrin cell surface laminin-binding protein which recognizes an A chain neurite-promoting peptide.

Laminin is a potent promoter of neurite outgrowth, and a synthetic peptide of 19 amino acids, PA22-2, from the A chain has been found to promote process formation. Using peptide affinity chromatography, we have identified a 110-kDa, cell surface ligand from both neural cells and brain which binds this sequence. This binding protein does not share immunological identity with the B1 chain of integrin, and reduction does not alter its mobility in sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Antibody to the 110-kDa protein stained cellular processes in vivo. Sequence analysis of the first 18 amino acids from the amino terminus yielded almost exact sequence identity with nucleolin, a major 110-kDa nucleolar phosphoprotein. Antibody to nucleolin, however, does not interact with the neural-derived, laminin-peptide-binding 110-kDa protein. The 110-kDa protein appears to be a ligand for a specific site on laminin.

Amino Acid Sequence↗

Differential expression of laminin chains in hepatic lipocytes.

The lipocyte is an important source of laminin in the normal liver. We have investigated the expression of the 3 chains of laminin in isolated rat lipocytes. Both B1 and B2 chains, but not A, were found in medium from 5-day-old lipocyte primary cultures by immunoblotting and immunoprecipitation of 35S-labeled proteins after reducing SDS-polyacrylamide gel electrophoresis. An additional polypeptide of Mr = 380,000 was identified by immunoprecipitation. Under non-reducing conditions only one Mr = 900,000 band was revealed. High levels of B1 and B2 mRNAs were also demonstrated in 5-day-old cultured lipocytes while at the time of seeding, only B2 chain mRNAs were clearly detectable. A chain mRNA was constantly absent. These results suggest that lipocytes produce a variant form of laminin in primary culture and that the Mr = 380,000 polypeptide could be unrelated to the A chain of laminin.

Adipose Tissue↗

Cellular sources of matrix proteins in experimentally induced cholestatic rat liver.

Collagens (I, III, and IV), fibronectin, and laminin were localized using the indirect immunoperoxidase technique 14 days after bile duct ligation, i.e., when extensive fibrosis and numerous neoformed bile ducts were observed. Extensive fibrous septa in enlarged portal spaces were stained for collagens I, III and IV, fibronectin, and laminin. Collagen IV and laminin were abundant around proliferative bile ducts. In addition, collagen IV was nearly continuous in the sinusoids. At the ultrastructural level, antigens were localized in the endoplasmic reticulum of several liver cell types. In portal spaces, bile duct cells and cells that form the transitional canal of Hering were strongly labelled for basement membrane components, particularly laminin, but not for collagens I and III and fibronectin, which were abundant in fibroblast-like cells. Inside the lobule, only Ito cells and, to a lesser extent, endothelial cells contained collagens, fibronectin, and laminin. Ito cells were found to be heavily stained for collagens III and IV, and laminin. Except for fibronectin, which was always abundant, precursors of extracellular matrix proteins were only slightly detectable in the endoplasmic reticulum of some hepatocytes, particularly those located close to altered areas. This study demonstrates that experimental extrahepatic cholestasis in the rat induces periportal fibrosis and continuous deposition of collagen IV in the sinusoids. Several cell types participate in the formation of extracellular matrix components, particularly bile duct cells and Ito cells, with a possible involvement of hepatocytes, thus suggesting that cholestasis provokes changes in the pattern of matrix protein production in liver cells.

Animals↗

Expression of laminin and its receptor LBP-32 in human and rat hepatoma cells.

Dramatic cellular changes that occur during hepatocarcinogenesis are associated with major alterations in extracellular matrix formation and in the relationships between cells and their microenvironment. We have studied the expression of laminin, the major noncollagenous glycoprotein of basement membrane, and the laminin receptor 32 kD laminin-binding protein in two rat (Faza 967 and HTC) and two human (HepG2 and HBGC2) hepatoma cell lines that express a variety of liver-specific functions. Laminin was found in the rough endoplasmic reticulum of these cells when the indirect immunoperoxidase method and electron microscopic examination were used. Radiolabeled laminin, immunoprecipitated from both media and cell extracts, was resolved by electrophoresis on sodium dodecyl sulfate gel in two major polypeptides that comigrated with the A and B subunits from Engelbreth-Holm-Swarm tumor laminin. Immunoblot analysis showed that the Mr = 400,000 polypeptide did not correspond to the A subunit of laminin. Northern blot analyses demonstrated large amounts of B1 and B2 mRNAs but no A chain mRNA. We conclude that the tumor cells produce the laminin B chains only. In contrast, normal adult hepatocytes from either man or rat lacked laminin mRNAs, whereas in 1-day primary culture, B chain mRNAs became detectable. The steady-state level of 32 kD laminin-binding protein mRNA was 10-fold and threefold higher in rat hepatoma cells than in freshly isolated and 1-day cultured normal rat hepatocytes, respectively. In human hepatocytes, the steady-state levels of 32 kD laminin-binding protein mRNAs varied depending on the donor and never reached the level of the human hepatoma cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Hepatic microsomal N-hydroxylation of adenine to 6-N-hydroxylaminopurine.

The enzymatic N-hydroxylation of the purine base adenine to the genotoxic and mutagenic compound 6-N-hydroxylaminopurine is reported for the first time. Adenine was N-oxygenated in vitro by aerobic incubations with 3-methylcholanthrene or isosafrole induced microsomal fractions of rat liver homogenates and NADPH. The formation of 6-N-hydroxylaminopurine in the incubation mixtures under widely differing conditions was assayed using newly-developed, high-performance liquid- and thin-layer chromatographic methods. Optimal reaction conditions and kinetic parameters were determined. Neither superoxide anion nor hydrogen peroxide was directly involved in the N-hydroxylation reaction. Oxidases like xanthine oxidase and peroxidase (in the presence of hydrogen peroxide) did not catalyse this N-hydroxylation. The involvement of cytochrome P-450 isoenzymes in this reaction is supported by the observation that the N-hydroxylation is only observed after pretreatment of the rats with 3-methylcholanthrene or isosafrole. Other inducers (phenobarbital, ethanol, 5-pregnen-3 beta ol-20-one-16 alpha-carbonitrile) were without effect. This is the first example of the microsomal transformation of an endogenous substance to a toxic derivative by usually foreign substances (xenobiotics) metabolizing cytochrome P-450 isoenzymes. The significance for the in vivo situation is discussed on the basis of the data obtained in this study.

Adenine↗

[Biotransformation of benzamidine and benzamidoxime by microsomal enzymes of the rabbit].

At pH 7.4 neither benzamidine (1) is ring-hydroxylated nor benzamidoxime (2) is N-hydroxylated, reduced or ring-hydroxylated by aerobic incubations with microsomal fractions (12000 g supernatant, microsomes) of rabbit liver homogenates and NADPH. Products of hydrolytic processes are also not detected. A very long incubation period and a pH 6.3 are necessary for the detection of a slight reduction of benzamidoxime (2) to benzamidine (1). Results are obtained by use of synthetic reference material and by newly developed HPLC methods. Thus, kinetic studies of the microsomal N-hydroxylation of benzamidine (1) to benzamidoxime (2) in the presence of N-methylbenzamidine (3) performed at pH 7.4 are not influenced by other transformations and provide evidence for the involvement of the same isoenzyme of cytochrome P-450 for both the N-hydroxylation of 1 and the N-dealkylation of 3.

Amidines↗

Structural requirements of microsomal N-oxygenations derived from studies on amidines.

A short description of the chemical and pharmacological properties of amidines is followed by a comprehensive discussion of investigations on the N-oxidative biotransformations of amidines. The results of these investigations have confirmed the author's hypothesis, based on mechanisms, that N-oxygenation by the cytochrome P-450 enzyme system is observed particularly when N-dealkylation is not possible because of the absence of hydrogen atoms on the carbon atoms adjacent to the nitrogen atom, alpha-H-atoms. The results obtained with amidines are discussed in their relationship to other microsomal N-oxygenations both by cytochrome P-450 and flavine-containing monooxygenase. Attempts are made to deduce a scheme for predicting N-oxygenations.

Amidines↗

Mechanism of the microsomal N-hydroxylation of para-substituted benzamidines.

With the aid of HPLC analyses and simple Michaelis-Menten kinetics, the maximum rates of the microsomal N-oxygenation of various para-substituted benzamidines 1 to benzamidoximes 2 were determined. The presence of electron-donating substituents increased the rates whereas the presence of electron-accepting substituents decreased them. A significant correlation between the logarithm of the maximum rates with the Hammett sigma p constants was found for a reaction constant of rho = -0.88. These results support the postulated radical mechanism for the N-oxygenation by the cytochrome P-450 enzyme system.

Amidines↗

Polyadenylation of histone H3 and H4 mRNAs in dicotyledonous plants.

The histone H3 and H4 genes are shown to be expressed in both Arabidopsis plantlets and transitory multicellular suspension. The 5'- and 3'-ends of the H4 mRNAs have been localized on two H4 genes previously sequenced, H4A748 and H4A777. S1-nuclease mapping and reverse-transcriptase-primer-elongation experiments revealed the existence of two start points for transcription, located 31 and 37 nucleotides downstream from the TATA-box. The 3'-end of the mRNA corresponding to H4A748 was localized at 177 nt after the stop codon. The other gene, H4A777, most probably is not expressed. In addition to a long 3'-untranslated region, the H4 mRNA was shown to be polyadenylated in both plantlets and cell-suspension. This observation was extended to the H3 mRNAs of Arabidopsis and of two other dicots, tobacco and sunflower. Previous results on maize H3 and H4 mRNAs suggest that polyadenylation is a common feature for histone mRNAs in higher plants.

Base Sequence↗