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R M Philpot

Publications and source records attributed to R M Philpot.

At least 19 recordsLinked to original sources

Characterization of the methionine S-oxidase activity of rat liver and kidney microsomes: immunochemical and kinetic evidence for FMO3 being the major catalyst.

Methionine is oxidized to methionine sulfoxide by rat liver and kidney microsomes in an O2- and NADPH-dependent manner. In all microsomal assays, no methionine sulfone was detected. Use of a monoclonal antibody to rat liver cytochrome P-450 reductase, various cytochrome P-450 and peroxidase inhibitors, antioxidants, and competitive flavin-containing monooxygenase (FMO) substrates suggested that methionine sulfoxidation was exclusively mediated by FMOs. At 5 mM methionine, the d-isomer of methionine sulfoxide was preferentially detected over the l-isomer in both liver (ratio, 5:1) and kidney microsomes (ratio, 12:1); however, at 30 to 40 mM methionine concentrations, the diastereomeric ratio was reduced to approximately 3:1 in both tissues. The Vmax/K(m) ratios determined for the liver and kidney microsomes were similar. Because cDNA-expressed rabbit FMO3 and FMO1 were previously shown to preferentially catalyze methionine and S-benzyl-L-cysteine (SBC) sulfoxidations, respectively, these substrates were used to isolate two distinct S-oxidase activities from the same rat liver microsomal preparation. The purified activities have apparent molecular weights of approximately 55 kDa as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The findings that the methionine S-oxidase reacted intensely with antibodies raised against rabbit FMO3 and the SBC S-oxidase reacted intensely with antibodies raised against rabbit FMO1 provide evidence for these activities being associated with FMO3 and FMO1, respectively. The apparent methionine K(m) determined with the purified methionine S-oxidase was 3.4 mM, whereas the apparent methionine K(m) determined with the purified SBC S-oxidase was 48 mM. The methionine sulfoxide d:l diastereomeric ratio obtained with methionine S-oxidase was 15:1, whereas the diastereomeric ratio obtained with SBC S-oxidase was only 2:1. These results provide strong evidence for the expression of both FMO1 and FMO3 in rat liver microsomes and suggest that FMO3 is the major catalyst of methionine sulfoxidation in rat liver and kidney microsomes.

Animals

Expression and characterization of a modified flavin-containing monooxygenase 4 from humans.

The inability to obtain flavin-containing monooxygenase 4 (FMO4) in heterologous systems has hampered efforts to characterize this isoform of the FMO gene family. Neither the human nor the rabbit ortholog of FMO4, each of which has been cloned and sequenced, has been expressed. Attempts to achieve expression of FMO4 have been made with Escherichia coli, baculovirus, yeast, and COS systems. The cDNAs encoding FMO4 have extended coding regions compared with those encoding other FMO isoforms. The derived amino acid sequences of FMO1, -2, -3, and -5 from all species examined contain about the same number of residues (531-535 residues), whereas the derived sequences of human and rabbit FMO4 contain 558 and 555 residues, respectively. We have investigated whether the elongation of the FMO4 coding region is related to the inability to achieve expression. The cDNA encoding human FMO4 has been modified by a single base change that introduces a stop codon at the consensus position. This modification allows for expression in E. coli. Lack of expression of intact FMO4 is caused by a problem that occurs following transcription, a problem that is overcome completely by relocation of the stop codon 81 bases to 5' of its normal position. Truncated FMO4 is expressed as an active enzyme with characteristics typical of an FMO isoform. Possible functional changes resulting from altering the 3'-end of an FMO were investigated with human FMO3. Elongation of the coding region of the FMO3 cDNA to the next available stop codon (FMO3*) resulted in the expression of an enzyme with properties very similar to those of unmodified FMO3. Elongation of FMO3 lowered the level of expression in E. coli but did not eliminate it. As with FMO4, the difference in expression levels between FMO3 and elongated FMO3 (FMO3*) appears to be related to translation rather than transcription. The functional characteristics of FMO3 and FMO3* are not significantly different.

Amino Acid Sequence

Xenobiotic biotransforming enzymes in the central nervous system: an isoform of flavin-containing monooxygenase (FMO4) is expressed in rabbit brain.

The flavin-containing monooxygenase (FMO, EC 1.14.13.8) is involved in the metabolism of a number of important xenobiotics including many which affect the central nervous system (CNS). Recently, reports in the literature concerning the amount, activity, location, and isozyme characteristics of this enzyme in the brain have presented conflicting evidence. In order to resolve some of the controversy surrounding FMO in the brain, a highly sensitive method for the detection of flavin-containing monooxygenase (FMO) mRNA in whole brain was employed. A poorly conserved region of FMO transcripts was used to design five sets of oligonucleotide primers. Each primer set was specific for one of the five currently known isoforms of FMO. Four and five isoforms, respectively, are expressed in rabbit liver and kidney, as determined by reverse transcription-polymerase chain reaction. However, only one set of primers amplified a specific rabbit brain cDNA fragment. The sequence of the amplification produced affirmed its identity as a segment of FMO4 cDNA. Thus, the FMO of rabbit brain may consist of a single, as yet uncharacterized isozyme and, contrary to several recent reports, is likely to be expressed at low levels.

Animals

4-Ipomeanol and 2-aminoanthracene cytotoxicity in C3H/10T1/2 cells expressing rabbit cytochrome P450 4B1.

In the present study, retroviral vectors were used to stably transfer and express the cDNA encoding rabbit CYP4B1 in mouse C3H/10T1/2 cells. The replication defective retroviral vector was packaged in the ecotropic packaging cell line, GP+E-86, with infectious titer of approximately 1 x 10(6) cfu/mL. Infection, followed by selection with G418, showed an infection efficiency of approximately 70% for the recipient C3H/10T1/2 cells. Analysis of ten G418 resistant clones showed that the number of vector inserts ranged from 4 to 13 copies per cell genome. Each clone was positive for microsomal CYP4B1 protein as determined by immunoblotting. Cytochrome P450 4B1 activity was assessed by the cytotoxicity of 4-ipomeanol, a known substrate for P450 4B1 and a model compound for chemical-induced injury to the lung. The initial clonigenic assays showed that 100% toxicity occurred in all the clones after a 96-hr exposure to 250 microM 4-ipomeanol. Parental C3H/10T1/2 cells were resistant to 4-ipomeanol at concentrations as high as 1 mM. Two clones, designated No. 2 and No. 19, differing in levels of P450 4B1 protein, were characterized further for 4-ipomeanol and other chemical toxicities. A concentration-response study indicated 50% cytotoxicity at 4-ipomeanol concentrations of 1.5 micrograms/mL for clone No. 2 and 2.5 micrograms/mL for clone No. 19. A panel of agents representing the aromatic amines, some of which are known or suspected P450 4B1 substrates, were tested for cytotoxicity in clone No. 2. These agents included 2-aminoanthracene, 2-aminonaphthalene, 2-aminofluorene, 2-acetylaminofluorene and 4-aminobiphenyl. Only 2-aminoanthracene gave a clear cytotoxic response reducing the survival fraction of clone No. 2 to 50% at 0.2 micrograms/mL while affecting parental cells minimally. In vitro expression of CYP4B1 provides a new experimental system for further elucidating the cytotoxic and mutagenic effects of P450 4B1 substrates.

Amines

CYP4 isozyme specificity and the relationship between omega-hydroxylation and terminal desaturation of valproic acid.

The cytochrome P450-dependent terminal desaturation of valproic acid (VPA) is of both toxicological and mechanistic interest because the product, 4-ene-VPA, is a more potent hepatotoxin than the parent compound and its generation represents a rather novel metabolic reaction for the cytochrome P450 system. In the present study, lung microsomes from rabbits were identified as a rich source of VPA desaturase activity. Monospecific polyclonal antibodies directed against CYP4B1 (anti-4B) inhibited 82% of 4-ene-VPA formation, whereas monospecific polyclonal antibodies directed against CYP2B4 (anti-2B) inhibited only 15% of 4-ene-VPA formation. Anti-4B also inhibited 95% of the 5-hydroxy-VPA formation, but only 42% of 4-hydroxy-VPA formation. These data suggest that CYP4B1 accounts for more than 80% of the 4-ene- and 5-hydroxy-VPA metabolites generated by rabbit lung microsomes. CYP4B1 expressed in HepG2 cells metabolized VPA with a turnover number of 35 min-1 and formed the 5-hydroxy-, 4-hydroxy-, and 4-ene-VPA metabolites in a ratio of 110:2:1, respectively. In contrast, the lauric acid omega-hydroxylases, CYP4A1 and CYP4A3, did not give rise to detectable levels of any of these VPA metabolites. Therefore, these studies demonstrate a new functional role for CYP4B1 in the terminal desaturation and omega-hydroxylation of this short, branched-chain fatty acid.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Characterization of flavin-containing monooxygenase 5 (FMO5) cloned from human and guinea pig: evidence that the unique catalytic properties of FMO5 are not confined to the rabbit ortholog.

Several full-length clones encoding the human and guinea pig orthologs of flavin-containing monooxygenase 5 (FMO5) have been isolated from libraries constructed with hepatic mRNA. The clones were detected by hybridization with the cDNA encoding FMO5 expressed in rabbit. The human and guinea pig cDNAs encode for proteins of 533 amino acids that contain putative pyrophosphate binding domains characteristic of mammalian FMOs. The sequences derived for the human and guinea pig FMO5 proteins are 87% identical and are 85 and 82% identical, respectively, to the sequence of rabbit FMO5. As is the case with other FMOs, FMO5 in human and guinea pig is encoded by multiple transcripts. Rabbit FMO5 expressed in Escherichia coli was purified and used to elicit antibodies in goat. These antibodies detected FMO5 in samples from livers of adult humans, rabbits, and guinea pigs and fetal livers of humans. The human and guinea pig forms of FMO5 were expressed in E. coli and characterized. Neither enzyme effectively catalyzed the metabolism of methimazole, a general FMO substrate; however, both were active with n-octylamine. The responses of the human FMO5 and guinea pig FMO5 to detergent, ions and elevated temperature are all similar to the responses described for rabbit FMO5. These results indicate that the unique properties of FMO5 from rabbit are species-independent and that this form of the flavin-containing monooxygenase is not readily classified as a drug-metabolizing enzyme.

Amino Acid Sequence

Pulmonary cytochrome P-450 monooxygenase system and Clara cell differentiation in rats.

Because a number of studies suggest that the developmental expression of cytochrome P-450s (CYP) in Clara cells is species specific, this study was designed to compare the developmental patterns of the isoform CYP2B and NADPH reductase protein expression and CYP2B activity with the time course of smooth endoplasmic reticulum (SER) formation in Clara cells of rat lung. Pulmonary CYP2B activity measured as pentoxyresorufin O-dealkylation in lung homogenates was not detectable before 7 days postnatal age, but was detectable at adult levels at 50 days postnatal age. In Clara cells, CYP2B and NADPH reductase were detected immunohistochemically at 4 days postnatal age and at adult levels at 10 days postnatal age. The volume density of SER in Clara cells of terminal bronchioles measured morphometrically increased significantly with postnatal age. We conclude that in the rat 1) CYP2B and NADPH reductase distribution and CYP2B activity are age dependent; 2) the increase in Clara cell SER precedes the expression of CYP2B protein; 3) cellular appearance of CYP2B protein precedes CYP activity; and 4) SER appearance and P-450 protein expression do not occur uniformly in differentiating Clara cells, even within the same bronchiole.

Animals

The rabbit pulmonary cytochrome P450 arachidonic acid metabolic pathway: characterization and significance.

Cytochrome P450 metabolizes arachidonic acid to several unique and biologically active compounds in rabbit liver and kidney. Microsomal fractions prepared from rabbit lung homogenates metabolized arachidonic acid through cytochrome P450 pathways, yielding cis-epoxyeicosatrienoic acids (EETs) and their hydration products, vic-dihydroxyeicosatrienoic acids, mid-chain cis-trans conjugated dienols, and 19- and 20-hydroxyeicosatetraenoic acids. Inhibition studies using polyclonal antibodies prepared against purified CYP2B4 demonstrated 100% inhibition of arachidonic acid epoxide formation. Purified CYP2B4, reconstituted in the presence of NADPH-cytochrome P450 reductase and cytochrome b5, metabolized arachidonic acid, producing primarily EETs. EETs were detected in lung homogenate using gas chromatography/mass spectroscopy, providing evidence for the in vivo pulmonary cytochrome P450 epoxidation of arachidonic acid. Chiral analysis of these lung EETs demonstrated a preference for the 14(R),15(S)-, 11(S),12(R)-, and 8(S),9(R)-EET enantiomers. Both EETs and vic-dihydroxyeicosatrienoic acids were detected in bronchoalveolar lavage fluid. At micromolar concentrations, methylated 5,6-EET and 8,9-EET significantly relaxed histamine-contracted guinea pig hilar bronchi in vitro. In contrast, 20-hydroxyeicosatetraenoic acid caused contraction to near maximal tension. We conclude that CYP2B4, an abundant rabbit lung cytochrome P450 enzyme, is the primary constitutive pulmonary arachidonic acid epoxygenase and that these locally produced, biologically active eicosanoids may be involved in maintaining homeostasis within the lung.

Animals

Expression of xenobiotic-metabolizing enzymes in cultured rat tracheal epithelial cells.

Rat tracheal epithelial (RTE) cells were cultured on membrane support with and without retinoic acid (RA). In early (6-day-old) cultures, the epithelium is a monolayer or bilayer of undifferentiated cells and secretes little mucuslike product either in the absence or presence of RA. In late (12- to 15-day-old) cultures, the epithelium differentiates as a mucociliary epithelium in the presence of RA and as a squamous epithelium in the absence of RA. The purpose of our study was to determine whether a number of xenobiotic enzymes are expressed in these cultures and whether their expression depends on the state of differentiation. Enzyme expression was characterized by electrophoresis and immunoblotting as a function of time in culture and phenotypic differentiation. Cytochrome P450 1A1 was not expressed in freshly harvested RTE cells. This isoenzyme was induced in rats by gavage with 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) or by exposure of early RTE cell cultures to TCDD, provided RA was also added to the cultures. Cytochrome P450 2B1 was observed in freshly isolated RTE cells, but not in early or late RTE cultures. In contrast, expression of NADPH-cytochrome P450 reductase was decreased in early cultures, but was increased in well-differentiated cultures. Flavin-containing monooxygenase was detected in lung tissue, but not in freshly harvested or cultured RTE cells. Glutathione S-transferase (GST) mu and pi were expressed in freshly harvested RTE cells. GST pi was expressed in early and late cultures, whereas GST mu was expressed in late cultures, but could not be found in early cultured RTE cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Flavin-containing monooxygenase (FMO)-dependent metabolism of methionine and evidence for FMO3 being the major FMO involved in methionine sulfoxidation in rabbit liver and kidney microsomes.

Methionine was a substrate for cDNA-expressed rabbit flavin-containing monooxygenase (FMO) 1, FMO2, and FMO3, while incubations with membrane fractions containing cDNA-expressed FMO5 did not lead to the detection of methionine sulfoxide; Km values with FMO1, FMO2, and FMO3 were about 48.0, 30.0, and 6.5 mM, respectively. With FMO3 methionine d-sulfoxide was formed in nearly 8-fold higher concentrations than the l-diastereomer, whereas with FMO1 and FMO2, the d:l diastereomeric ratios were approximately 1.5:1 and 0.7:1, respectively. These results provide evidence for methionine being the first identified endogenous compound metabolized to diastereomeric sulfoxides by flavin-containing monooxygenases. The Km values for methionine sulfoxidation in rabbit liver and kidney microsomes (3.7 and 6.0 mM, respectively) were more comparable to the Km value obtained with FMO3 than FMO1 or FMO2. This result provides evidence that FMO3 is the major FMO isoform involved in methionine sulfoxidation in rabbit liver and kidney microsomes. Further evidence for this hypothesis is provided by the finding that methionine d-sulfoxide was also the preferred product in rabbit liver and kidney microsomes by nearly 8:1 and 6:1 over the l-diastereomer, respectively.

Animals

Cloning and sequencing of flavin-containing monooxygenases FMO3 and FMO4 from rabbit and characterization of FMO3.

The flavin-containing monooxygenases (FMO) are a family of enzymes that contain putative FAD- and NADPH-binding domains within the first 200 residues of their N termini. The cDNAs encoding these enzymes contain an area of relatively high identity over the 5' half of the coding region. Rabbit genomic DNA was probed under low stringency conditions, with a mixture of 5' cDNA fragments encoding rabbit FMO1, FMO2, or FMO5. Bands associated specifically with FMO1, FMO2, or FMO5 were resolved by analysis at high stringency with individual probes. Several bands were detected that could not be assigned to FMO1, FMO2, or FMO5. The behavior of the 5' probes at low versus high stringency was used to facilitate the isolation of cDNAs corresponding to the unknown DNA bands. A cDNA library was constructed from rabbit liver mRNA and screened under low stringency hybridization conditions (30 degrees C, 50% formamide, 1 x SSC, 0.1% SDS) with the mixture of 5' FMO1, FMO2, and FMO5 cDNA probes. A total of 157 clones was detected. Of these, 117 clones remained under high stringency hybridization conditions (65 degrees C, 50% formamide, 0.1 x SSC, 0.1% SDS) and were identified as FMO1 (95 clones) or FMO5 (22 clones). Of the 40 remaining clones, 36 were characterized by sequence analysis as encoding FMO3, previously identified at the protein level by Ozols (Ozols, J. (1991) Arch. Biochem. Biophys. 290, 103-115) as a second rabbit liver FMO. Four clones were shown to encode an FMO not previously described for the rabbit, FMO4. No clones encoding FMO2 were isolated from the liver library. Sequence analysis revealed that FMO3 and FMO4 are 56% identical, and analysis of genomic DNA indicated that each is encoded by a single gene. Message distribution was tissue-, species-, and form-specific. The properties of FMO3 cDNA expressed in Escherichia coli were found to be more similar to those of FMO1 than FMO2, but to differ significantly from both. Rabbit genomic DNA was probed under conditions of low stringency with a mixture of 5' cDNA fragments encoding all five FMO forms and produced results consistent with the possibility of one additional FMO.

Amino Acid Sequence

Prochiral sulfoxidation as a probe for multiple forms of the microsomal flavin-containing monooxygenase: studies with rabbit FMO1, FMO2, FMO3, and FMO5 expressed in Escherichia coli.

Multiple forms of the microsomal flavin-containing monooxygenase (FMO) exist in rabbit tissues. In order to better understand the catalytic properties of these isoforms, we have expressed rabbit FMO1, FMO2, FMO3, and FMO5 in Escherichia coli and examined their kinetic parameters and prochiral selectivities for the sulfoxidation of methyl-, ethyl-, n-propyl-, and n-butyl-substituted p-tolyl sulfides. FMO1 and FMO2 exhibited high affinities for these substrates (Km < 10 microM), in contrast to the low-affinity FMO3 form for which Km values ranged between 100 and 280 microM. FMO5 did not form quantifiable levels of sulfoxide metabolites at the concentrations used. The individual stereochemical metabolite profiles generated by FMO1, FMO2, and FMO3 were unique and served to distinguish among these three cDNA-expressed isoforms. To investigate the relationship between the kinetic parameters for the cDNA-expressed enzymes and the native microsomal enzymes, we examined the kinetics and stereoselectivity of metabolism of methyl p-tolyl sulfide by detergent-solubilized rabbit liver microsomes. We analyzed these data with respect to FMO1 and FMO3, the two predominant hepatic isoforms. Sulfoxidation of methyl p-tolyl sulfide by FMO1 and FMO3 solubilized from E. coli microsomes proceeded with apparent Kms of 18 and 270 microM, respectively. FMO1 was essentially stereospecific for formation of (R)-methyl p-tolyl sulfoxide, whereas FMO3 generated this metabolite with little prochiral selectivity. Sulfoxidation of methyl p-tolyl sulfide by detergent-solubilized rabbit liver microsomes was best described by a two-enzyme model, with apparent Km values of 11 and 340 microM. The enantiomeric purity of the (R)-methyl p-tolyl sulfoxide metabolite, generated by detergent-solubilized rabbit liver microsomes, decreased progressively with increasing substrate concentration, from a high of 96% enantiomeric excess at a substrate concentration of 5 microM to a low of 63% enantiomeric excess at a substrate concentration of 2 mM. The kinetic and stereochemical properties of the high-affinity and low-affinity components of detergent-solubilized rabbit liver microsomes were similar to those exhibited by cDNA-expressed FMO1 and FMO3, respectively. Therefore, methyl p-tolyl sulfide, used at the appropriate substrate concentrations, is useful for discriminating between FMO1- and FMO3-mediated catalysis in rabbit liver microsomal preparations.

Alkylation

The mammalian flavin-containing monooxygenases: molecular characterization and regulation of expression.

The flavin-containing monooxygenase (FMO) has been characterized in several mammalian species, including human. The FMO forms a stable NADP(H)- and oxygen-dependent 4 alpha-hydroperoxy flavin enzyme intermediate in the absence of an oxygenatable substrate. As such, substrate specificity appears to be controlled by access to this stabilized intermediate, resulting in this enzyme's ability to metabolize a wide variety of xenobiotics. These include tertiary and secondary alkyl- and arylamines, many hydrazines, thiocarbamides, thioamides, sulfides, disulfides, thiols, and other soft nucleophiles. Although some of these compounds are oxidized to less active derivatives, several examples of metabolic activation to potentially toxic intermediates also exist. Mercapto-pyrimidines and thiocarbamides, for example, appear to be activated predominantly by FMO. Thus, this enzyme system may play an important role in the early steps of chemical toxicity. Often, the contribution of FMO to the metabolism of a given compound can be assessed by its unique stereoselectivity relative to other oxygenases. For example, the cytochromes P450 oxidize (S)-nicotine to a mixture of cis- and trans-N-1'-oxides. In contrast, (S)-nicotine is oxidized by human FMO3 exclusively to the trans-N-1'-oxide. With the purification and cloning of FMO from multiple tissues and species it became apparent that more than one FMO exists. Further, there are considerable tissue- and species-specific differences in FMO expression that likely contribute to observed differences in detoxication competency and toxicant susceptibility.

Animals

Catalytic selectivity and mechanism-based inactivation of stably expressed and hepatic cytochromes P450 2B4 and 2B5: implications of the cytochrome P450 2B5 polymorphism.

Cytochrome P450 (P450) 2B5 was recently found to be functionally distinct from three other rabbit P450 2B forms, based on androstenedione hydroxylase activities. In this investigation, we examined the frequency of the P450 2B5-null phenotype and the functional consequences of polymorphic P450 2B5 expression in hepatic microsomes from phenobarbital-treated rabbits. Four of the 10 animals examined did not have detectable levels of P450 2B5 mRNA and exhibited much lower microsomal androstenedione 15 alpha- and 16 alpha-hydroxylase activities. The 15 alpha-hydroxylase activity was found to correlate (r = 0.91) with liver P450 2B5 mRNA. P450 2B4 and 2B5 were stably expressed in human kidney 293 cells to further characterize substrate specificities and to investigate mechanism-based inactivation by phencyclidine. P450 2B4 was 4-16-fold more active than 2B5 towards benzphetamine, 7-ethoxycoumarin, methylenedioxybenzene, and pentoxyresorufin. Benzyloxyresorufin O-debenzylase activity was 160-fold higher for P450 2B4 than P450 2B5. Anti-P450 2B4 IgG inhibited benzyloxyresorufin O-debenzylation nearly completely in untreated and phenobarbital-induced liver microsomes. Phencyclidine selectively inactivated P450 2B4, compared with 2B5, in both human kidney 293 cell and liver microsomes. Poor inactivation of P450 2B5 by phencyclidine was found to be a result of its low maximal rate constant. Results of this study establish the idea that the metabolic consequences of phenobarbital induction depend on the potential of animals to express functionally variant P450 2B forms. Furthermore, we conclude that one or more of the 11 amino acid differences between these highly related P450 forms are critical to their substrate specificities and selective inactivation.

Androstenedione

N-aralkylated derivatives of 1-aminobenzotriazole are potent isozyme- and lung-selective mechanism-based inhibitors of guinea pig cytochrome P-450 in vivo.

1-Aminobenzotriazole (ABT) and its N-benzyl-1-aminobenzotriazole (BBT) and N-alpha-methylbenzyl (alpha-MB) derivatives were compared as isozyme-selective, lung-selective (vs. liver) mechanism-based inhibitors of cytochrome P-450 (P450) in noninduced, beta-naphthoflavone-induced and phenobarbital-induced guinea pigs 4 hr after i.v. administration. Isozyme-selective monooxygenase activities for lung P450 1A1, 2B4 and 4B1 orthologues (7-ethoxyresorufin O-deethylation for guinea pig P450 1A1, 7-pentoxyresorufin O-depentylation for P450 2Bx and 4-aminobiphenyl N-hydroxylation for P450 4Bx, respectively) were determined in pulmonary and hepatic microsomes. BBT and alpha-MB inactivated pulmonary P450 in an isozyme-selective manner; in non- and phenobarbital-induced animals the order of inactivation was 2Bx > 1A1 >>> 4Bx. In beta-naphthoflavone-induced animals, alpha-MB specifically inhibited 2Bx in the lung (>90% inactivation at 0.075 mumol/kg, whereas a 100-fold higher dose did not inhibit 4Bx or 1A1). BBT and alpha-MB also were highly selective for the inactivation of pulmonary vs. hepatic P450. In each case at least one of the doses administered caused marked inactivation of pulmonary 2Bx (>80% with alpha-MB and 50-70% with BBT) without inhibiting the hepatic monooxygenase activities. In contrast, ABT displayed little isozyme-selectively and little tissue-selectivity. The differences in tissue-selectivity of the inhibitors are due to BBT and alpha-MB being much more potent (100- to 1000-fold) inactivators of pulmonary P450 2Bx than ABT consistent with BBT and alpha-MB, but not ABT, serving as substrates for the lipophilic aromatic amine uptake system in the lung. In summary, BBT and alpha-MB, at appropriate doses, are isozyme-selective/specific (P450 2Bx), lung-specific inhibitors of P450 in guinea pig in vivo.

Animals

Unique distribution profiles of glutathione S-transferases in regions of kidney, ureter, and bladder of rabbit.

BACKGROUND: Glutathione S-transferases detoxify a broad range of exogenous compounds, but are important also in the metabolism of endogenous compounds. Physiologically relevant substrates are the endoperoxide and hydroperoxide metabolites of arachidonic acid that play important roles in many tissues including the kidney. EXPERIMENTAL DESIGN: We used immunohistochemical and immunoblotting techniques in a systematic study of renal localization of four rabbit enzymes that represent three major mammalian cytosolic glutathione S-transferase classes, alpha, pi, and mu. RESULTS: The two alpha-class enzymes (rbGST alpha I, rbGST alpha II) were distributed discretely in kidney, ureter, and bladder, while pi and mu were widely distributed in the renal system. Immunohistochemical localization in paraffin sections with antibodies specific for rbGST alpha I or rbGST alpha II demonstrated that no compartment of the renal system contained both enzymes. Collecting ducts of the inner medulla and all epithelial cells of the kidney pelvis, ureter, and bladder contained rbGST alpha I. All cells lining proximal tubules contained rbGST alpha II. No other compartment of the renal system exhibited immunoreactivity with anti-rbGST alpha II. Antibody specific for pi reacted with cells lining nephrons, ureter, and bladder and with endothelial cells throughout the renal system. Localization of pi was most prominent in the collecting ducts of medulla and in the epithelial cells lining the kidney pelvis, ureter, and bladder. As anti-mu did not react in tissue sections, distribution of mu was determined by immunoblotting. Immunoblots of cytosolic preparations from whole kidney, cortex, medulla, and epithelia of ureter, bladder, and kidney pelvis were prepared and tested with each of the 4 antibodies. This second localization method confirmed the distribution data from tissue sections for rbGST alpha I, rb GST alpha II, and pi; also, it demonstrated that the staining observed in tissue was specifically for each enzyme. mu was detected in all the renal cytosolic preparations except those from the epithelium of the kidney pelvis. CONCLUSIONS: The discrete renal distribution of rbGST alpha I and rbGST alpha II and their distinct catalytic activities with prostaglandin substrates suggest important roles for these enzymes in prostaglandin-dependent renal functions.

Animals

Elevated susceptibility to 4-ipomeanol cytotoxicity in immature Clara cells of neonatal rabbits.

The bronchiolar Clara cell is one of the primary targets in adult mammals for environmental contaminants metabolized by cytochrome P450 (CYP) monooxygenases. Previous studies show that the onset of CYP expression in Clara cells occurs during postnatal lung development. This study was designed to determine whether differentiating Clara cells are susceptible to CYP-activated cytotoxicants and whether these substances can influence subsequent cytodifferentiation. Adult and neonatal (5-9 days of age) rabbits were given a single dose of 4-ipomeanol (IPO) i.p. and sacrificed 2 or 7 days later. Their lungs were removed and assessed morphologically, immunohistochemically or for CYP activity. Treatment with 10 mg/kg of IPO (0.25 of the LD50 for adults) killed 6 of 10 neonatal rabbits. At a dose of 5 mg/kg of IPO, most terminal bronchiolar cells were destroyed in the neonatal rabbits. The basal lamina of terminal bronchioles was either bare or lined by squamous or low cuboidal epithelium and macrophages. Terminal bronchiolar epithelium in neonates was minimally affected by a dose of 1 mg/kg of IPO. The terminal bronchioles in adults appeared nearly unaffected by either 1 or 5 mg/kg of IPO. Interalveolar septa were unaffected in all treated animals. Lung microsomal enzymes from neonatal rabbits metabolized IPO to reactive intermediates at less than one-third the rate in the lungs of adults. Seven days (15 days of age) after IPO treatment, CYP activity (as measured by pentoxyresorufin O-dealkylation) was one-half that of age-matched controls after a dose of 5 mg/kg but equaled control activity after 1 mg/kg. Immunohistochemical analysis, using antibodies to CYP2B4, CYP4B and CYP reductase, indicated that the decrease in activity seen with a dose of 5 mg/kg of IPO was the result of a loss of immunoreactive CYP proteins from the cuboidal cells of terminal bronchioles. It was concluded that, in neonatal animals, differentiating Clara cells are more susceptible to injury by bioactivated cytotoxicants than are differentiated cells in adults, despite the neonate's lower levels of CYP monooxygenases. Furthermore, IPO-induced injury impairs the normal pattern of postnatal Clara cell differentiation.

Aging