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N Herschkowitz

Publications and source records attributed to N Herschkowitz.

At least 37 records · Page 2Linked to original sources

N-acetyl-L-aspartate is a major source of acetyl groups for lipid synthesis during rat brain development.

The function of N-acetyl-L-aspartate (NAA), a predominant substance in the CNS, has not yet been determined. To investigate the possible function of NAA as a lipid precursor [14C]-N-acetyl-L-aspartate (NAA) or [14C]-acetate (AcA) was injected intracerebrally into 8, 15- and 22-day-old rats. These time points were selected because NAA concentration and the activity of the NAA synthetizing enzyme L-aspartate-N-acetyltransferase (ANAT) were low in 8-day-old rats, intermediate in 15-day-old rats and high in 22-day-old rats. During an incubation period of 4 h the radioactive acetyl group of NAA is incorporated into the lipid fraction in amounts of 42.9 to 65.7% of recovered total radioactivity, increasing with the age of the rats. In contrast, radioactivity incorporated from AcA is constant for all three ages. With NAA as precursor only 7.2-9.4% of the recovered total radioactivity is incorporated into the protein fraction. With AcA as precursor 27.0-18.1% of recovered radioactivity is incorporated into the protein fraction, the amounts decreasing with age. Taking into account that in vivo NAA concentration in the brain is much higher than the AcA concentration, NAA is clearly the more efficient precursor for lipid synthesis than AcA. Further, we compared NAA and AcA as lipid precursors by analyzing the radioactivity in single lipid fractions, expressed as normalized specific incorporation or normalized incorporation. The measured differences between NAA and AcA in normalized specific and normalized incorporation of acetyl groups imply that NAA is not simply degraded to AcA before incorporated into lipids. We conclude that NAA is a major source of acetyl groups for lipid synthesis during rat brain development.

Acetyltransferases↗

Neuro-Behçet: acute and sequential aspects by MRI and MRS.

Three patients with neuro-Behçet underwent MRI and MRS during acute illness. After therapy, MRI and MRS were performed in 3 and 1 patients, respectively. MRI revealed a marked improvement of the initial lesion in 2, a complete remission in 1 patient. MRS showed a reduction of the N-acetyl-aspartate (NAA)/phosphocreatine (CR) ratio within the acute lesion in all patients and a normalization in the follow-up spectrum of the examined patient.

Adrenal Cortex Hormones↗

Magnetic resonance in preterm and term newborns: 1H-spectroscopy in developing human brain.

Localized proton magnetic resonance spectra were recorded from human cerebellum in vivo with a 1.5-T magnet. The spectra from healthy adults and preterm and term babies showed resonances from N-acetylaspartate, creatine and phosphocreatine, choline-containing compounds such as phosphocholine and glycerophosphocholine, taurine, and inositol. The age-dependent changes of in vivo molar concentrations of N-acetylaspartate, choline, taurine, and inositol were estimated in preterm babies, babies at term, and adults. The range of postconceptional age in the studied babies was 31 to 45 wk. Taking the biochemically measured creatine concentrations in age-corresponding autopsy material as an internal standard, the in vivo concentrations of the other metabolites were calculated from the proton spectra. N-acetylaspartate showed an increase from 1.9 mM in preterm babies to 3.1 mM in term babies and to 6.5 mM in adult brain. Taurine was noted to increase from 1.1 mM in preterm infants to 2.3 mM in term infants and did not decrease significantly in adult brain. Choline and inositol concentrations did not change significantly throughout the studied age groups. These new data on in vivo, localized 1H-spectroscopy show that it is a sensitive method for studying early metabolic brain development in humans.

Adult↗

[Magnetic resonance in oncology].

The physical and biological background to magnetic resonance imaging (MRI) in patients with neoplasms is reviewed. The clinical indications for this method of diagnosis, staging, and follow-up of malignant neoplasms are discussed on the basis of the guidelines given by the MRI Consensus Conference on April 25-26, 1989, in Berne. MRI is the modality of choice in patients with neoplasms of the central nervous system and the musculoskeletal system. Further emerging indications for MRI are neoplasma of the ENT region, liver, and pelvic organs. Finally, the foreseeable developments in MRI and in magnetic resonance spectroscopy (MRS) are mentioned.

Abdominal Neoplasms↗

Ultrastructural and biochemical findings in brain cell cultures infected with canine distemper virus.

To study the pathomechanism of demyelination in canine distemper (CD), dog brain cell cultures were infected with virulent A75/17-CD virus (CDV) and examined ultrastructurally. Special attention was paid to the oligodendrocytes, which were specifically immunolabelled. In addition, cerebroside sulfotransferase (CST), an enzyme specific for oligodendrocyte activity was assayed during the course of the infection. Infection and maturation as well as CDV-induced changes were found in astrocytes and brain macrophages. Infection of oligodendrocytes was rarely seen, although CST activity of the culture markedly decreased and vacuolar degeneration of these cells occurred, resulting in their complete disappearance. We concluded that the degeneration of oligodendrocytes and demyelination is not due to direct virus-oligodendrocyte interaction, but due to CDV-induced events in other glial cells.

Animals↗

Brain development: 1H magnetic resonance spectroscopy of rat brain extracts compared with chromatographic methods.

We compared in vitro 1H magnetic resonance spectroscopy (MRS) measurements of rat brain extracts (rats: 2-56 days old) with chromatographic measurements and in a further step also with results of in vitro MRS. The following substances can be reliably measured in brain extracts by in vitro MRS: N-acetylaspartate (NAA), total creatine (Cr), phosphorylethanoloamine (PE), taurine (Tau), glutamate (Glu), glutamine (Gln), gamma-aminobutyrate (GABA) and alanine (Ala). Two different methods of MRS data evaluation compared with chromatographic data on Cr and NAA are shown. During development of the rat from day 2-56 brain concentrations of PE, Tau and Ala decrease, those of NAA, Cr, Glu and Gln increase, while GABA does not change. The developmental patterns of these substances are the same, whether measured by in vitro MRS or by chromatographic methods. Quantification of NAA, Cr, Tau, GABA and PE leads to the same results with both methods, while Glu, Gln and Ala concentrations determined by in vitro MRS are apparently lower than those measured chemically. The NAA/Cr ratios of 7 to 35-day-old rats were determined by in vivo 1H MRS. These results correlate with chromatographic and in vitro data. Using appropriate methods in the in vivo and in vitro MR-technique, the obtained data compare well with the chromatographic results.

Aging↗

Brain damage and recovery in hyperphenylalaninemic rats.

Rats were made hyperphenylalaninemic by injecting a mixture of alpha-methylphenylalanine and phenylalanine. Brain development was measured by biochemical, histological and 31-P nuclear magnetic resonance (NMR) methods. In 17-day-old hyperphenylalaninemic rats, brain myelinogenesis was disturbed. Compared to controls, test animals had lower body weights, brain weights, cerebrosides, sulfatides, myelin basic protein (MBP) and reduced cerebroside sulfotransferase (CST) and 2'3'-cyclic nucleotide-3'-phosphohydrolase (CNP) activities. No changes were found in total proteins, total lipids, total phospholipids, phosphatidylethanolamine and phosphorylethanolamine. In the brain of 17-day-old hyperphenylalaninemic rats no changes in phosphomonoesters, phosphodiester and phosphocreatine were found using in vivo 31-P NMR spectroscopy. Because body weights of hyperphenylalaninemic rats were significantly lower than those of controls, we compared them with undernourished rats. Undernourished rats had lower body weights, brain weights and CNP activity. No other changes were found. Therefore, we conclude that hyperphenylalaninemia per se and not undernutrition affected myelinogenesis in test animals. After treatment was discontinued, test rats recovered completely within 6 weeks with regard to biochemical and histological measurements; at 59 days they had normal body weights, cerebrosides, sulfatides, MBP, total proteins, total lipids, total phospholipids, phosphatidylethanolamine, phosphorylethanolamine and normal CST and CNP activities. Brain weights were significantly reduced.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Proton NMR observation of phenylalanine and an aromatic metabolite in the rabbit brain in vivo.

1H nuclear magnetic resonance (NMR) was used to detect directly the signal from the aromatic protons of phenylalanine (phe) in the brains of rabbits made hyperphenylalaninemic by administration of a diet high in phe and containing 0.4% alpha-methylphenylalanine. In addition to those resonances found in the region between 6.5 and 8.5 ppm in the 1H NMR spectra of control rabbits, a resonance centered at 7.37 ppm was observed in the spectra obtained from the brains of hyperphenylalaninemic rabbits in vivo or in situ postmortem. The chemical shift of this additional resonance was that expected for protons of the phenyl ring of phe. Its intensity correlated well with measurements of brain phe levels made on postmortem samples by amino acid analyzer. Both of these measurements correlated poorly with amino acid analyzer measurements of serum phe, especially at high values of the latter. High-resolution 1H NMR spectra of the brain extracts showed that in most animals an unidentified aromatic compound, possibly gamma-glutamyl-phe, was present in addition to phe. This study demonstrates the feasibility of measuring the concentration of brain phenyl and its metabolites noninvasively by 1H NMR. The method can be used for similar measurements in human brain.

Animals↗

[Energy metabolism of the brain, detected with 31-P magnetic resonance spectroscopy during extracorporeal circulation in the rabbit].

The question of a possible brain damage during open heart surgery using extracorporeal circulation is still a problem, especially in infants with circulatory arrest under deep hypothermia. During the last years Magnetic Resonance Spectroscopy was developed, and with this method we have now a possibility to study brain energy metabolism non-invasively and continuously. Our aim was to develop an animal model (rabbit) for studying brain energy metabolism by 31-P Magnetic Resonance Spectroscopy during extracorporeal circulation. In a first step we have shown that the influence of hypothermia on energy metabolism in the brain can be measured in the intact animal by MR-Spectroscopy. In a second step a non-magnetic heart-lung machine for rabbits was constructed and is described here. We get a completely normal brain spectrum in the beginning and after two hours of extracorporeal circulation. The spectrum is also normal on extracorporeal circulation at 35 degrees C and during cooling down to 18 degrees C. With this animal model it will be possible to study different variables of extracorporeal circulation such as duration of circulatory arrest under deep hypothermia or changes of the priming including pharmacological changes.

Adenosine Triphosphate↗

Immunohistochemical localization of myelin basic protein and 2',3'-cyclic nucleotide 3'-phosphohydrolase in flattened membrane expansions produced by cultured oligodendrocytes.

Oligodendrocytes, the cells responsible for myelin sheath formation in the central nervous system, were isolated from primary dissociated mixed glial cultures prepared from newborn mouse forebrain, and further cultured in a serum-free defined culture medium. Single and double indirect immunofluorescence using antibodies against the myelin glycolipids, galactocerebroside and sulfatide, and the myelin proteins, myelin basic protein and 2',3'-cyclic nucleotide 3'-phosphohydrolase, was used to investigate the composition of the flat membrane extensions produced by some oligodendrocytes in culture. Galactocerebroside and sulfatide were both expressed on the external surface of the plasma membrane of oligodendrocyte cell bodies and processes and also the membrane expansions. Neither myelin basic protein nor 2',3'-cyclic nucleotide 3'-phosphohydrolase were expressed on the external surface of oligodendrocytes. Myelin basic protein could be localized to the cell body and the membrane expansions but not the major and fine processes. The localization of these myelin components suggests that the expansions have characteristics of the mature myelin membrane. 2',3'-Cyclic nucleotide 3'-phosphohydrolase was found to be localized in the cell body, and in total contrast to myelin basic protein, in the major processes and the fine interconnecting processes, but not the membrane expansions. In some of the cells 2',3'-cyclic nucleotide 3'-phosphohydrolase was present at the outer extremities of the flat membrane sheets, giving the appearance of an extending growth region. Our results thus clearly show that 2',3'-cyclic nucleotide 3'-phosphohydrolase is localized within oligodendrocytes in discrete regions of plasma membranes and suggest that this protein has a possible role in the early stages of myelin formation.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Utilization of D-beta-hydroxybutyrate and oleate as alternate energy fuels in brain cell cultures of newborn mice after hypoxia at different glucose concentrations.

In dissociated whole brain cell cultures from newborn mice, we have previously shown that during glucose deprivation under normoxia, D-beta-hydroxybutyrate and oleic acid are increasingly used for energy production. We now asked whether this glucose dependency of the utilization of D-beta-hydroxybutyrate and oleic acid as alternate energy fuels is also present after a hypoxic phase. 3-Hydroxy[3-14C]butyrate or [U-14C]oleic acid were added to 7- and 14-d-old cultures and 14CO2-production compared after hypoxia in normal and glucose-deprived conditions. After hypoxia, the ability of the cells 7 d in culture to increase D-beta-hydroxybutyrate consumption in response to glucose deprivation is diminished, 14-d-old cells lose this ability. In contrast, after hypoxia, both 7- and 14-d-old cultures maintain or even improve the ability to increase oleate consumption, when glucose is lacking.

3-Hydroxybutyric Acid↗

The effect of temporary hypoxia on prostaglandin synthesis in mouse brain cell cultures during development.

Cultures of dissociated brain cells of new born mice represent a model for the study of brain development. One and two weeks old, they correspond in regard to oligodendrocyte differentiation to about the developmental stage of a human newborn and a six months old infant respectively. Such cultures were used to establish the developmental prostaglandin pattern and to study early and late recovery of prostaglandin synthesis from temporary hypoxia. Basal and bradykinin stimulated prostaglandin release were examined. Most prominently in stimulated release, the developmental prostaglandin pattern at one week showed a prevalence of PGE2 (33 +/- 4%) over PGD2 (12 +/- 5%), which in two weeks old cultures changes to an opposite distribution (PGE2 10 +/- 4%; PGD2 25 +/- 6%). This change goes parallel with the number and differentiation of oligodendrocytes. During the first day post hypoxia, imposed at the end of one week, the production of 6 oxo PGF1 alpha, PGE2, PGD2 and TXB2 was significantly decreased in two study series and increased compared to control in another. Since the arachidonic acid uptake was the same in all three series, this differential observation indicates differential early recovery. 8 days post hypoxia (late recovery), PG release was not different from control, indicating complete recovery at that time. During early recovery from hypoxia on 14 days old cultures, basal PG release was not significantly different from control, however bradykinin stimulated release was significantly inhibited in all three series. This may indicate that mainly regulatory influences on PG release in older cultures are compromised by hypoxia.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Correlation between 31P NMR phosphomonoester and biochemically determined phosphorylethanolamine and phosphatidylethanolamine during development of the rat brain.

Phosphomonoesters were measured in the developing rat brain by in vivo and in vitro 31P nuclear magnetic resonance (NMR) spectroscopy and by classical biochemical methods. In vitro NMR showed that the main component of the phosphomonoester peak is phosphorylethanolamine. Phosphomonoesters measured by in vivo NMR decreased during development at the same rate as the biochemically estimated phosphorylethanolamine. Phosphorylethanolamine, a precursor of the membrane lipid phosphatidylethanolamine, decreased during development parallel to an increase of the lipid phosphatidylethanolamine, which was measured biochemically. These studies show that 31P NMR can be used to monitor brain development in vivo.

Aging↗

Brain development in the fetus, neonate and infant.

In structural brain development eight interrelated but distinguishable events can be recognized: (1) neuronal induction, (2) neuroblast proliferation, (3) neuronal migration, (4) neuronal selective aggregation, (5) neuronal differentiation and formation of specific patterns of connection, (6) neuronal death, (7) selective synapse elimination and (8) myelination. The basic mechanisms regulating these developmental events are genetically determined but at any stage of development epigenetic and environmental factors modulate the genetic regulation. This paper reviews representative samples of work in animal experiments and knowledge in human fetal brain development by several authors.

Aging↗

[Clinical applications of magnetic resonance spectroscopy].

In this overview the physics of magnetic resonance spectroscopy (MRS) are briefly discussed. The biochemical pathways which can be investigated by MRS in physiological and pathological states are presented. The potential clinical applications of this method to the musculoskeletal system, heart, brain, liver and kidney are examined.

Brain↗

Study of hereditary fructose intolerance by use of 31P magnetic resonance spectroscopy.

The effect of fructose on liver metabolism in patients with hereditary fructose intolerance (HFI) and in heterozygotes for HFI was studied by 31P magnetic resonance spectroscopy (31P-MRS). In patients with HFI (n = 5) ingestion of small amounts of fructose was followed by an increase in sugar phosphates and decrease in inorganic phosphate (Pi) in the liver that could be detected by 31P-MRS. 31P-MRS could be used to diagnose fructose intolerance and to monitor the patients' compliance with a fructose-restricted diet. In heterozygotes (n = 8) 50 g fructose given orally led to accumulation of sugar phosphates and depletion of Pi in the liver. Fructose also induced a larger increase in plasma urate in heterozygotes than in control subjects. The effect of fructose on liver Pi and plasma urate was most pronounced in heterozygotes with gout (n = 3). Heterozygosity for HFI may predispose to hyperuricaemia.

Carbohydrate Metabolism, Inborn Errors↗

High-affinity uptake of gamma-[3H]aminobutyric acid by isolated mouse oligodendrocytes in culture.

Oligodendrocytes were isolated from mixed glial cultures of neonatal mouse forebrain and further grown in serum-free hormone supplemented culture medium. Cell populations were identified by indirect immunofluorescence using a range of specific antibodies, revealing a predominantly immature population of oligodendrocytes, the majority expressing the myelin glycolipids galactocerebroside and sulfatide on their plasma membrane. Astroglial contamination was found to be minimal. Simultaneous autoradiography and immunofluorescence demonstrated the presence of a transport system for the major inhibitory neurotransmitter GABA in the oligodendrocytes. The transport system was found to be energy, sodium and temperature dependent. Kinetic analysis revealed a high affinity system, with a Km of 6.27 microM and Vmax of 0.714 nmol/min/mg protein, which is comparable to that found previously for CNS neurons and astrocytes.

Animals↗

Serum antibodies to central nervous system antigens: an analysis of their relation with different human neurologic disorders.

In a previous paper we have presented a double ligand enzyme linked immunosorbent assay (ELISA) technique suitable for the detection of human antibodies to different brain antigens. In the present study, we have applied this technique to the analysis of 100 neurologically affected patients with regard to both a list of clinical parameters and the presence in their sera of nervous tissue specific antibodies, in an attempt to highlight the meaning of such antibodies in different neurologic disorder. We show that the presence of these antibodies cannot be used for elucidation of pathogenesis or for diagnostic purposes, but can be used as a prognostic index.

Adolescent↗