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Biomedical subjects

N Seiler

Publications and source records attributed to N Seiler.

At least 127 records · Page 7Linked to original sources

Developmental changes of the GABA and polyamine systems in isolated neurons in cell culture.

Dissociated cells of cerebral hemispheres from 8-day-old chick embryos were cultivated for 8 days in polylysine-coated Petri dishes. Changes of DNA, RNA, total proteins, putrescine, spermidine, spermine, free amino acids and enzymes involved in polyamine and GABA metabolism were studied throughout neuronal development in culture. The presence of GABAergic neurons in the cultured cell population was demonstrated. There were time-dependent changes in cellular polyamine concentrations and the activities of the enzymes involved in polyamine metabolism. Since no significant proliferation took place after the first day in culture, the observed changes indicate a role of polyamine metabolism during neuronal differentiation; it was not possible, however, to attribute the observed changes to specific functions. This culture system seems especially useful for the study of biochemical and of functional correlations between GABA and polyamine metabolism and morphological and functional developments of neurons.

Aging↗

Formation of acetylpolyamines and putrescine from spermidine by normal and transformed chick embryo fibroblasts.

Polyamine uptake and metabolism were studied in cultures of normal and Rous sarcoma virus-transformed chick embryo fibroblasts. The uptake of radioactive putrescine and spermidine by the transformed cells was faster than that of the normal controls. The amount of radioactive putrescine and polyamines taken up by the transformed cells also exceeded that observed with normal fibroblasts. The intracellular levels of putrescine, spermidine, and spermine were considerably higher in the transformed cells than in the normal controls. Radioactive spermidine was converted into N-acetylputrescine and N1-acetylspermidine by the transformed cells. The extent of this conversion by the normal fibroblasts was significantly lower. Radioactive putrescine and spermine were also formed from radioactive spermidine added to cultures of transformed fibroblasts. The rate of this conversion was significantly slower in normal chick embryo fibroblasts.

Acetylation↗

Metabolism of acetyl derivatives of polyamines in cultured polyamine-deficient rat hepatoma cells.

The acetyl derivatives of polyamines, N1-acetylspermine (N1-AcSPM) and N1-acetylspermidine (N1-AcSPD), are in vitro better substrates of tissue polyamine oxidase than the corresponding non-acetylated polyamines. Rat hepatoma tissue culture (HTC) cells, depleted of their putrescine (PUT) and spermidine (SPD) content by the use of DL-alpha-difluoromethylornithine (DFMeOrn), an irreversible inhibitor of L-ornithine decarboxylase, were used to study in situ the catabolism of these acetyl derivatives of polyamines. Normal intracellular spermidine content was restored by the addition of N1-acetylspermidine to polyamine-deficient cells. Addition of spermine (SPM) did not restore the spermidine content, although this polyamine elevated the spermine content of the cells. N1-Acetylspermidine reestablished normal spermidine levels of the cells and elevated the cellular putrescine content more efficiently and more rapidly than spermidine. Monoacetylputrescine and N1, N12-diacetylspermine (di-AcSPM) were ineffective in restoring putrescine and spermidine contents. These findings support the concept that N1-acetylspermine and N1-acetylspermidine are natural substrates of tissue polyamine oxidase and suggest poor membrane permeability of monoacetylputrescine (AcPUT) and N1, N12-diacetylspermine. Furthermore, they indicate that acetylation of polyamines by the cytosolic acetyl CoA: polyamine N1-acetyltransferase is the rate-limiting step of polyamine catabolism in rat hepatoma cells. Growth inhibition by DL-alpha-difluoromethylornithine was reversed by N1-acetylspermine and N1-acetylspermidine but not by monoacetylputrescine and N1, N12-diacetylspermine. These results suggest again that the antiproliferative effect of DL-alpha-dilfuoromethylornithine is related to inhibition of polyamine biosynthesis.

Acetylation↗

Enhanced urinary excretion of N1-acetylspermidine and the presence of tumors.

We have studied the urinary excretion of free and acetylated polyamines in hepatoma-bearing Buffalo rats during the period of linear growth of the tumor mass. The excretion of nonconjugated polyamines was unchanged. N1-Acetylspermidine excretion did not parallel the linear increase in tumor mass but increased exponentially. Enhancement of N8-acetylspermidine excretion above control levels was observed only at a time when the average tumor mass was 35 +/- 9 (S.D.) g. shortly before the period when necrosis is usually observed. These data taken together with the analysis of urinary acetylpolyamines in rats bearing mammary tumors and in two melanoma patients show that the determination of the N1-acetylspermidine/N8-acetylspermidine ratio in urine may be of only limited value as an indicator for the presence of tumors.

Animals↗

Interconversion, catabolism and elimination of the polyamines.

Two catabolic pathways exist for spermidine and spermine. One is responsible for the interconversion of the polyamines, a physiological intracellular event. The first and probably rate limiting step of the polyamine interconversion pathway is acetylation in the N1-position by a cytosolic enzyme. The reaction products N1-acetylspermine and N1-acetylspermidine are substrates of the cytoplasmic polyamine oxidase. This enzyme transforms the N1-acetylpolyamines into spermidine and putrescine respectively. N1-Acetylspermidine is at the same time a major urinary excretion product. The factors which control the rates of N1-acetylspermidine degradation by polyamine oxidase versus its elimination via transport are not known. The second catabolic pathway forms putreanine from spermidine and N8-(2-carboxyethyl)-spermidine and spermic acid from spermine. It is catalyzed by the well known serum spermine oxidase. The second step in this reaction sequence, the dehydrogenation of the aldehydes formed by the serum spermine oxidase occurs intracellularly and is catalyzed either by specific or non-specific aldehyde dehydrogenases. The function of this "two compartment reaction sequence" is most probably to protect tissues from extracellular or exogenous (alimentary) polyamines. Its end-products appear to be physiologically indifferent urinary excretion products. Both catabolic pathways may have marked effects on the urinary polyamine pattern. Drugs as well as a variety of physiological and pathological states may influence polyamine catabolism and elimination at various levels, and may cause characteristic alterations in the urinary excretion of free and conjugated polyamines and of the amino acids deriving from the polyamines.

Acetylation↗

Acetylation of spermidine in polyamine catabolism.

Treatment with thioacetamide (150 mg/kg) was used to enhance polyamine metabolism in rat liver. The increased uptake and catabolism of [14C]spermine and the changes of putrescine, spermidine and spermine concentrations indicated enhanced polyamine turnover rates. The increase of hepatic putrescine concentration was accompanied by an increase of monoacetylputrescine and N1-monoacetylspermidine concentration. In control animals, the latter compound was below detection levels. Thioacetamide treatment also enhanced putrescine excretion, which again was concomitant with an increased excretion of N1-acetylspermidine. The close time-dependent correlation between induced putrescine formation and enhanced formation of N1-acetylspermidine at a time when liver spermidine and spermine concentrations are not changed, favors the notion that acetylation is an essential step in polyamine degradation and elimination. The increase of polyamine oxidase and decrease of acetylpolyamine deacetylase activities in the liver of thioacetamide-treated rats is in line with an increased polyamine turnover, but these enzymes, although essential, are not rate-limiting in the catabolic reactions.

Acetamides↗

On the turnover of polyamines spermidine and spermine in mouse brain and other organs.

The apparent biological half-lives of spermidine and spermine in mouse brain and other organs were determined by measurement of the specific radioactivities of these compounds over long periods of time. The endogenous polyamine pools were labeled by repeated intraperitoneal injection of [1,4-14C]putrescine.2HCl, [2-14C]D,L-methionine, [2-3H]L-methionine and S-adenosyl-[2-3H]L-methionine. Repeated injection were given to ensure labeling of both fast and slow polyamine pools. It was shown that the two parts of the polyamine molecules which derive from ornithine and methionine have significantly different life spans, especially in the brain. Actual turnover rates of polyamines could not be determined because of the active interconversion between spermine and spermidine, and between spermidine and putrescine. The observed reutilization of putrescine originating from spermidine degradation for spermidine biosynthesis, and the analogous reutilization of spermidine in spermine biosyntehsis is discussed with respect to its physiological significance and its relationship to cellular organization.

Animals↗

Polyamine oxidase in rat tissues.

An assay procedure for polyamine oxidase in tissue homogenates was devised. The method is based on the degradation of N1,n12-diacetylspermine to N1-acetylspermidine and the determination using TLC of the latter. Polyamine oxidase activity is high in most tissues. Its activity is comparable to that of spermidine and spermine synthase. The independence of this enzyme from cellular proliferation rates and its relatively long biological half-life are indicative of a passive role of polyamine oxidase in the regulation of cellular polyamine levels.

Age Factors↗

On the role of GABA in vertebrate polyamine metabolism.

4-Aminobutyric acid (GABA), the major inhibitory neurotransmitter in vertebrate brain, is formed not only by decarboxylation of glutamic acid but also directly from putrescine. Two pathways can be shown to operate in vertebrates: oxidative deamination by diamine oxidase and transformation of putrescine into monoacetylputrescine with subsequent oxidative deamination of this intermediate by monoamine oxidase. Monoacetylation and oxidation degradation of the acetyl derivatives is most probably a common pathway of the polyamines. The formation of spermic acid and putreanine from spermine and spermidine, respectively, seems analogous to the reaction of putrescine with diamine oxidase. Apart from metabolic transformation of the polyamines to GABA, there are indirect interrelations with potential regulatory functions. A variety of agents able to influence brain GABA metabolism induce changes of the activity of the decarboxylases involved in polyamine metabolism and alterations of cerebral putrescine concentrations. These interrelations could be important in the control of local cerebral protein metabolism. The excessive transformation of putrescine to GABA in early neural development suggests a role in cellular differentiation.

Amine Oxidase (Copper-Containing)↗

Drugs affecting GABA.

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4-Aminobutyrate Transaminase↗

Determination of the naturally occurring monoacetyl derivatives of di- and polyamines.

A method is described for the determination of pmol quantities of monoacetylputrescine, N1-acetylspermidine, N8-acetylspermidine and related compounds. The method is based on the derivation of these compounds with 5-dimethylaminonaphthalene-1-sulphonylchloride, followed by thin-layer chromatographic separation. Cleanup steps allow the application of the method to urine analyses. From the repeated determination of acetylated polyamines in the urine of healthy individuals it can be concluded that these conjugates are the major excretory form of di- and polyamines. The cleanup steps used in this procedure and the method described for the stabilization of 5-dimethylaminonaphthalene-1-sulphonyl derivatives on thin-layer plates are advantageous also for the analyses of total polyamines in urine hydrolysates, and in related applications of the dansylation method.

Adult↗

Rapid method for the assay of 4-aminobutyric acid (GABA), glutamic acid and aspartic acid in brain tissue and subcellular fractions.

The thin-layer electrophoretic separation at pH 4.8 of brain extracts and a procedure for fluorescent staining of the plates with fluorescamine are described for the rapid routine determination of 4-aminobutyric acid (GABA), glutamic acid and aspartic acid in brain extracts and in particulate fractions of brain tissue. Automated sample application, electrophoretic separation using two chambers, and quantitation by in situ fluorescence scanning allows the assay of 280 samples within three working days. The method is reproducible (S.D. less than 8% of the mean) within the range of 0.2--2 nmole per spot. The staining procedure can be applied to a variety of related analytical problems. The method has proved useful for the determination of the specific radioactivities of GABA, glutamic acid and aspartic acid in metabolic studies.

Aging↗