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Metabolic formation of dimethylamine and methylamine from basic drugs containing N-methyl group: a newly established chromatographic assay and its application to the determination of deaminase activity.

A new method of assaying deaminase activity was established in which methylamine and/or dimethylamine formed from drugs containing N,N-dimethyl or N-methyl group were derivatized with phenylisothiocyanate to phenylthiourea derivatives. After purification with Sep-PAK C18 cartridge, the derivatives were separated by a reversed phase high-performance liquid chromatography monitored by ultraviolet absorption. The recoveries and determination limits of methylamine and dimethylamine were over 55% and about 0.4 nmol/ml of incubation mixture, respectively. The method was used to measure the deaminase activities of liver microsomes of rats, rabbits and guinea pigs for 11 drugs. Of the compounds tested, diphenhydramine and diltiazem are deaminated with microsomes from all the above animal species; rat and rabbit liver microsomes also well deaminated promethazine. Most other drugs such as chlorpromazine, promazine, imipramine, amitriptyline and tetracaine were found to be poor substrates. In general, dimethylamine but not methylamine was the predominant metabolite formed from drugs containing N,N-dimethylamino group. The results also suggested that the deamination of these compounds takes place mainly via a one step mechanism, thus implying that the sequential reaction consisting of N-demethylation and elimination of ammonia is of minor importance. The relation between in vitro deaminase activity and the extent of the in vivo deamination for drugs is discussed.

Aminohydrolases↗

Effects of methyl linoleate hydroperoxide and hydrogen peroxide on N-nitrosation of dimethylamine.

The effects of methyl linoleate hydroperoxide and hydrogen peroxide on the N-nitrosation of dimethylamine were investigated. Hydrogen peroxide inhibited the formation of N-nitrosodimethylamine by the reaction of dimethylamine and nitrite in citrate buffer (pH 3-5). The inhibitory effect was due to the loss of available nitrite by quantitative conversion into nitrate. The formation of N-nitrosodimethylamine from the reaction of dimethylamine and nitrous acid in chloroform was effectively inhibited by methyl linoleate hydroperoxide. The inhibitory effect of the hydroperoxide was much greater than that of methyl linoleate. The loss of nitrous acid from the reaction mixture was due to the conversion of nitrous acid into nitric acid and the formation of two adducts, both of which contained nitrogen and had peroxide and carbonyl or carbonyl-liberating functions. It is suggested that unsaturated fatty acids and lipid hydroperoxides are effective inhibitors of nitrosamine formation.

Chromatography, Thin Layer↗

Purification and characterization of dimethylamine:5-hydroxybenzimidazolyl-cobamide methyltransferase from Methanosarcina barkeri Fusaro.

Dimethylamine:5-hydroxybenzimidazolylcobamide methyltransferase (DMA-MT) was purified from cells of Methanosarcina barkeri Fusaro grown on trimethylamine. In the presence of methylcobalamine:coenzyme M methyltransferase isoenzyme II [MT2(II)] the enzyme quite specifically catalyzed the stoichiometric conversion of dimethylamine (apparent Km = 0.45 mM) and 2-mercaptoethane-sulfonate (coenzyme M) to monomethylamine and methyl-coenzyme M. Monomethylamine was a competitive inhibitor of the reaction (Ki = 4.5 mM). The apparent molecular mass of DMA-MT was 100 kDa and the enzyme was found to be a dimer, composed of identical 50-kDa subunits. A corrinoid content of 0.9 +/- 0.1 mol B12/mol holoenzyme was calculated from HPLC analysis. The as-isolated methyltransferase was inactive, but it could be reductively reactivated. Activation required the presence of methyltransferase-activating protein, ATP and dimethylamine. Incubation with these compounds resulted in the methylation of the corrinoid prosthetic group.

Chromatography, Affinity↗

Fecal methylamine and dimethylamine in chronic renal failure.

Determinations of methylamine and dimethylamine in the fecal samples from normal subjects (n = 22), nonhemodialysis patients (n = 10), and hemodialysis patients (n = 14) with chronic renal failure have been made by high-performance liquid chromatography of their 2,4-dinitrophenyl derivatives. Fecal methylamine level was significantly lower in the normal group than in the nonhemodialysis group (P less than 0.05) and in the hemodialysis group (P less than 0.05). The mean dimethylamine value of the hemodialysis group was significantly higher than that of the nonhemodialysis group (P less than 0.01) and that of the normal group (P less than 0.005). The method has also been applied to the determination of the two amines in the fecal samples from two patients with leukemia who had been isolated and sterilized in the laminar air flow rooms. Preliminary in vitro experiments were given of the possible pathway for the production of these amines by the incubation of normal fecal samples with added creatinine.

Chromatography, High Pressure Liquid↗

Dimethylamine formation in man.

Trimethylamine N-oxide, a common food component, has been identified as a major source of urinary dimethylamine in man. The potential pathophysiological consequences of exposure to dietary derived dimethylamine are raised.

Administration, Oral↗

The toxicity of dimethylamine in F-344 rats and B6C3F1 mice following a 1-year inhalation exposure.

Dimethylamine is a widely used commodity chemical, for which there are few chronic toxicity data. Male and female F-344 rats and B6C3F1 mice were exposed by inhalation to 0, 10, 50, or 175 ppm dimethylamine (DMA) for 6 hr/day, 5 days/week for 12 months. Groups of 9-10 male and female rats and mice were necropsied after 6 and 12 months of exposure. No male mice were sacrificed at 12 months due to a high incidence of early deaths in that group. The mean body weight gain of rats and mice exposed to 175 ppm DMA was depressed to approximately 90% of control after 3 weeks of exposure. The only other treatment-related changes were concentration-related lesions in the nasal passages. Two distinct locations in the nose were affected: the respiratory epithelium in the anterior nasal passages, and the olfactory epithelium, especially that lining the anterior dorsal meatus. There was focal destruction of the anterior nasoturbinate and nasal septum, local inflammation, and focal squamous metaplasia of the respiratory epithelium in rats and mice. Mild goblet cell hyperplasia was observed only in rats. The olfactory epithelium exhibited extensive loss of sensory cells with less damage to sustentacular cells. There was also loss of olfactory nerves, hypertrophy of Bowman's glands, and distension of the ducts of these glands by serocellular debris in regions underlying degenerating olfactory epithelium. At the 175-ppm exposure level, rats had more extensive olfactory lesions than mice, with hyperplasia of small basophilic cells adjacent to the basement membrane being present in rats but not mice. After 12 months of exposure to 10 ppm DMA, minimal loss of olfactory sensory cells and their axons in olfactory nerve bundles was observed in the nasal passages of a few rats and mice. These results indicate that the olfactory sensory cell is highly sensitive to the toxic effects of DMA, with minor lesions being produced in rodents even at the current threshold limit value of 10 ppm.

Air Pollutants↗

Determination of dimethylamine in biological samples by high-performance liquid chromatography.

A reversed-phase HPLC method for the quantification of dimethylamine in serum and urine is presented. Dimethylamine (DMA) is converted into a stable fluorescent product by precolumn derivatization with fluorenylmethylchloroformate. The DMA derivative is resolved from derivatives of other amines and amino acids by gradient elution with a total run-time of 15 min. The lower limit of determination in biological samples is 0.1 micromol/l. Recoveries from spiked serum samples were 99-107%. Within- and between-run precision were better than 6%. Concentrations of DMA in serum from normal human subjects (n=8) and from continuous ambulatory peritoneal dialysis patients (n=15) were 3.3+/-1.5 and 29.1+/-12.1 micromol/l, respectively.

Adult↗

Acute inhalation toxicity and sensory irritation of dimethylamine.

The sensory irritation potential of dimethylamine (DMA) inhalation on male Fischer-344 rats and male Swiss-Webster mice was evaluated by measuring the reflex decrease in respiratory rate. In addition, the six hour LC50 for rats exposed to dimethylamine was established. Groups of 3 or 4 rats and mice were exposed for 10 minutes to concentrations of DMA ranging from 49 to 1576 ppm during which time the respiratory rate was monitored and recorded. Sensory irritation concentration-response curves were obtained and RD50 values (concentration which elicits a 50% decrease in respiratory rate) were determined to be 573 and 511 ppm for rats and mice, respectively. In another set of experiments seven groups of male rats were exposed to concentrations of DMA ranging from 600 to 6119 ppm for six hours. Mortality counts were made during and for 48 hours post exposure. The sic hour LC50 was determined to be 4540 ppm. Histopathologic examination of the respiratory tract revealed concentration related changes ranging from ulceration and necrosis to rhinitis, tracheitis, and emphysema. Overall, DMA was found to be less potent as a sensory irritant than other airborne irritants.

Animals↗

Identity of the subunits and the stoicheiometry of prosthetic groups in trimethylamine dehydrogenase and dimethylamine dehydrogenase.

Trimethylamine dehydrogenases from bacterium W3A1 and Hyphomicrobium X and the dimethylamine dehydrogenase from Hyphomicrobium X were found to contain only one kind of subunit. The millimolar absorption coefficient of a single [4Fe-4S] cluster in trimethylamine dehydrogenase from bacterium W3A1 was estimated to be 14.8 mM-1 . cm-1 at 443 nm. From this value a 1:1 stoicheiometry of the prosthetic groups, 6-S-cysteinyl-FMN and the [4Fe-4S] cluster, was established. Millimolar absorption coefficients of the three enzymes were in the range 49.4-58.7 mM-1 . cm-1 at approx. 440 nm. This range of values is consistent with the presence of two [4Fe-4S] clusters and two flavin residues, for which the millimolar absorption coefficient had earlier been found to be 12.3 mM-1 . cm-1 at 437 nm. The N-terminal amino acid was alanine in each of the three enzymes. Sequence analysis of the first 15 residues from the N-terminus of dimethylamine dehydrogenase indicated a single unique sequence. Two identical subunits, each containing covalently bound 6-S-cysteinyl-FMN and a [4Fe-4S] cluster, in each of the enzymes are therefore indicated.

Amino Acid Sequence↗

Contact allergy to oleamidopropyl dimethylamine.

Contact allergy to the cationic emulsifier oleamidopropyl dimethylamine was demonstrated in 3 patients. In every case the emulsifier was present in a particular brand of body lotion. Patch test concentrations of 0.1% and 0.5% in water are proposed; slightly higher concentrations may induce irritant responses. Although these are the first documented cases of contact allergy to oleamidopropyl dimethylamine, it is argued that hypersensitivity to this compound may not be rare.

Adult↗

Antitumor and cellular pharmacological properties of a novel platinum(IV) complex: trans-[PtCl(2)(OH)(2)(dimethylamine) (isopropylamine)].

The antitumor and cellular pharmacological properties of the trans-Pt(IV) complex, trans-[PtCl(2)(OH)(2)(dimethylamine)(isopropylamine)] (compound 2) has been evaluated in comparison with its corresponding trans-Pt(II) counterpart, trans-[PtCl(2)(dimethylamine)(isopropylamine)] (compound 1). The results reported here indicate that compound 2 markedly circumvents cisplatin resistance in 41McisR and CH1cisR ovarian tumor cell lines endowed with different mechanisms of resistance (decreased platinum accumulation and enhanced DNA repair/tolerance, respectively). However, compound 1 is able to circumvent cisplatin resistance only in CH1cisR cells. Interestingly, at equitoxic concentrations, compounds 1 and 2 induce a higher amount of apoptotic cells than cisplatin in CH1cisR cells. Moreover, the number of apoptotic cells induced by compounds 1 and 2 correlates with their ability to form DNA interstrand cross-links in CH1cisR cells. Although compounds 1 and 2 showed remarkable cytotoxic activity, only compound 2 was able to inhibit the growth of CH1 human ovarian carcinoma xenografts in mice. Binding studies with serum albumin indicate that compound 1 possesses a much higher reactivity against albumin than compound 2. Moreover, the level of binding of compound 1 to plasma proteins during the period 15 min to 1 h after administration to mice (15 mg/kg, i.p.) is 2.5-fold higher than that of compound 2. Therefore, the lack of in vivo antitumor activity shown by compound 1 might be related to its extracellular inactivation before reaching the tumor site because of its high rate of binding to plasma proteins.

Animals↗

Axonal polyneuropathy after acute dimethylamine borane intoxication.

OBJECTIVE: To study a patient with axonal polyneuropathy due to acute dimethylamine borane (DMAB) intoxication. PATIENT: Confusion and drowsiness in the acute stage, followed by cognitive impairments and polyneuropathy, are reported in a chemical factory worker after acute exposure to DMAB. RESULTS: Nerve conduction studies indicated axonal polyneuropathy, particularly in the motor nerves. Sural nerve biopsy studies 3 months later revealed an axonal degeneration with a mild decrease of fiber density in the large myelinated fibers. Quantitative sensory testing also disclosed an impairment of pinprick, temperature, and touch sensations. Cutaneous nerve biopsy studies 9 months later demonstrated a moderate loss of epidermal nerves. During the follow-up period of 1.5 years, the clinical features and serial nerve conduction studies showed a steady improvement. CONCLUSIONS: Since DMAB is a new product and has been widely used recently in the manufacturing of semiconductors and electronics, we conclude that DMAB intoxication may produce motor-predominant axonal polyneuropathy and that the establishment of a threshold limit value is warranted.

Acute Disease↗

Antimicrobial and diffusional correlation of N-alkyl betaines and N-alkyl-N,N-dimethylamine oxides from semisolids.

Previous studies have shown that two classes of amphoteric surfactants, N-alkyl betaines and N-alkyl-N,N-dimethylamine oxides, exhibit pronounced antimicrobial activity in combination and have potential for use in a semisolid formulation for topical or vaginal delivery. In this work, several potential delivery systems were prepared and evaluated for antimicrobial activity and diffusional properties. A novel antimicrobial test for semisolids was proposed that determined the contact time needed to kill microorganisms. The unformulated agents in solution exhibited the faster kill within 60 min, followed by the hydroxyethylcellulose gel formulation in 90 min, and the poloxamer gel and a cream that required several hours. Diffusion from the dosage form utilized a Slide-A-Lyzer diffusion cassette with a 10,000 MWCO membrane with (14)C-labeled active species added to the aforementioned antimicrobial formulations. Diffusion of the individual betaine and amine oxide derivatives were tracked over time to determine the diffusion rates and profiles of the components in each formulation and in solution. The betaine derivative diffused up to three times faster than the amine oxide derivative within the first 2 h, but the amount diffused was approximately equivalent at 24 h. The formulations delayed release in the same rank order as the contact time kill analysis: hydroxyethylcellulose gel > poloxamer gel > cream.

Anti-Bacterial Agents↗

Relevance of dimethylamine to mechanism studies of DIC (DTIC, NSC 45388).

Monolayer cultures of Chinese hamster ovary (CHO) cells take up the photo-decomposition products of DIC more readily than DIC itself. Dimethylamine, an immediate product of this degradative pathway, can ultimately become associated with the DNA, RNA, and protein of the cells as demonstrated by selective enzymatic degradation of macromolecules and isopycnic centrifugation. The relevance of these observations to mechanism studies of DIC is discussed.

Animals↗

Percutaneous absorption of salicylic acid, theophylline, 2, 4-dimethylamine, diethyl hexyl phthalic acid, and p-aminobenzoic acid in the isolated perfused porcine skin flap compared to man in vivo.

Human risk assessment for topical exposure requires percutaneous absorption data to link environmental contamination to potential systemic dose. Human absorption data are not readily available, so absorption models are used. In vitro diffusion systems are easy to use but have proved to be somewhat unreliable and are not validated to man. This study compares percutaneous absorption in the isolated perfused porcine skin flap (IPPSF) system with that in man in vivo. The study design utilized the same compounds and the same dose concentration and vehicle in both systems. Methodology for each system was that which is routinely used ineach system. The skin surface was not protected during the absorption dosing period. Percutaneous absorption values were, for man and the IPPSF system, respectively: salicylic acid (6.5 +/- 5.0%; 7.5 +/- 2.6%), theophylline (16.9 +/- 11.3%; 11.8 +/- 3.8%), 2,4-dimethylamine (1.1 +/- 0.3%; 3.8 +/- 0.6%), diethyl hexyl phthalic acid (1.8 +/- 0.5%; 3.9 +/- 2.4%), and p-aminobenzoic acid (11.5 +/- 6.3%; 5.9 +/- 3.7%) (correlation coefficient was 0.78; p < 0.04). The skin surface wash recovery postapplication was similar for salicylic acid in man (53.4 +/- 6.3%) and the IPPSF system (48.2 +/- 4.9%). With the other compounds the majority of surface chemical was recovered in the surface wash and skin tape strip in the IPPSF system. With man, other than salicylic acid, only a few percent applied dose was recovered with surface washing and tape stripping. Since the wash procedure was effective with pig skin, we can assume that these chemicals in man were lost to adsorption to any clothing or bedding with the volunteers. The absorption in man was not less than that in the IPPSF. Assuming the dose was lost in man, it seems plausible that whatever compound was to penetrate human skin in solvent vehicle did so in the period of time before the chemical was removed. The IPPSF system appears to be a good model for predicting percutaneous absorption relative to man. This study design should be used to validate other systems to humans in vivo.

4-Aminobenzoic Acid↗

Effects of acute and chronic dimethylamine exposure on the nasal mucociliary apparatus of F-344 rats.

Dimethylamine (DMA) is a highly water soluble gas with many industrial applications. Male F-344 rats were exposed to 175 ppm DMA 6 hr per day for 1, 2, 4, or 9 days or 2 years. Gross changes in nasal structure were recorded, effects of DMA on the mucociliary apparatus were assessed using video analysis, and tissues were evaluated for histopathology. In vitro nasal mucociliary flow patterns, mucus flow rates, and ciliary activity were studied and recorded for video motion analysis. There were distinct and generally consistent differences in the shape of the naso-, maxillo-, and ethmoid turbinates between young and old animals. Acute and chronic DMA exposures resulted in erosion of the anterior margins of the naso- and maxilloturbinates and fenestration of the adjacent septum. Ciliastasis and mucostasis were observed only on the anteromedial aspect of the maxilloturbinate. In the chronically exposed rats, mucociliary activity was present in areas adjacent to erosions of the turbinates and septum. Abnormal mucus flow patterns, including altered or reversed direction of flow and "whirlpool-like" formation, were observed in all treated rats, but were more severe following chronic exposure. There was a good correlation between the distribution of responses as assessed by histopathology and abnormal mucociliary function at all time points. In conclusion, the mucociliary apparatus continues to function in the nasal passages of rats having localized destruction of nasal epithelium, induced by DMA exposure, and this clearance system responds to alterations of nasal structure by modification of mucus flow patterns.

Age Factors↗

Interactive mutagenicity of sodium nitrite, dimethylamine, methylurea and ethylurea.

Groups of mice were treated per os with sodium nitrite either alone or in combination with nitrosatable amino compounds and tested in the host mediated assay. When mice were treated with sodium nitrite in combination with dimethylamine a small(4-fold) but significant increase in mutant frequency (MF) was observed. Ethylurea or methylurea in combination with sodium nitrite induced 10- or 850-fold increases in MF, respectively. The response to methylurea was dose-dependent with a 6- and 30-fold increase in MF at 5.4 and 11.5 mg/kg NaNO2 and a 6-fold increase at 108 mg/kg methylurea. That this response reflected gastric nitrosation was shown by the disappearance of the response if NaNO2 administration preceded methylurea treatment by 10 min. High MF's were observed if NaNO2 was administered 10 or 20 min after methylurea.

Animals↗

Intestinal distribution, absorption and secretion of dimethylamine and its biliary and urinary excretion in rats.

In the gastro-intestinal tract of male Wistar rats fed a commercial diet containing 23.6 ppm dimethylamine (DMA), the concentration of DMA was highest (11.2 +/- 2.1 ppm) in the stomach and declined towards the lower regions. In contrast, the highest DMA concentration (6.6 +/- 2.5 ppm) was observed in the upper small intestine in rats fed a diet containing only 1.0 ppm DMA. DMA was absorbed in the intestines, and the disappearance curves were monoexponential. The t1/2 values for DMA in the ligated stomach, upper and lower small intestine, caecum and large intestine were 198, 8.3, 11.6, 31.5 and 11.0 min, respectively. The DMA concentration in the blood had increased to 3.0 +/- 1.0 ppm (from a pre-injection level of 0.28 +/- 0.06 ppm) 5 min after the injection of 250 micrograms DMA into the ligated upper small intestine. The disappearance curve for DMA in the blood was monoexponential and the t1/2 for the initial 15 min was 12.5 min when 250 micrograms DMA was injected into a femoral vein. The peak concentrations of DMA in the intestine and bile, respectively, were 15.6 +/- 12.6 ppm (at 15 min) and 3.7 +/- 1.9 ppm (at 30 min after the iv injection of DMA). In this 30-min period, urinary DMA increased from 17.3 +/- 9.4 to 139 +/- 23 ppm. These results show that, following ingestion, DMA is absorbed from the intestine into the blood, from which it disappears rapidly, the major part being excreted in the urine while a small proportion is excreted in the bile or secreted into the intestine, where it may be reabsorbed.

Animals↗