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Fatty acid composition of single brain structures following different alpha linolenate dietary supplementations.

Weanling female rats randomly divided into three groups were fed a basal alipidic diet added with 10% (w/w) corn oil, soybean oil or linseed oil. After thirty and ninety days of dietary treatment the rats were killed and the fatty acid composition of brain, optic nerve and visual cortex was determined. The results demonstrate a different sensitivity to the diet of the different structures examined and, for the linseed oil treated rats, a strong decrease in the proportions of the total (n-6 + n-3) polyunsaturated fatty acids in all the structures examined.

Animals↗

[Effect of stimulation of "emotiogenic" brain structures on pyramidal tract responses].

In experiments with stimulation of emotiogenic zones (lateral and medial hypothalamus, raphe nuclei), as a conditioning agent, a study was made of summary responses of the pyramidal tract to electrical stimulation of the sensorimotor cortex in immobilized and freely moving rats. The responses exhibited a positive early direct P-component (mean latency 0.8 +/- 0.3 ms) and a late synaptic N-component (mean latency 1.8 +/- 0.5). Reduction of the N-component amplitude was observed during stimulation of the lateral hypothalamus, and its enhancement during stimulation of the medial hypothalamus. Stimulation of the raphe nuclei produced variable, statistically non-significant changes. The experiments have shown that the identified pyramidal neurones tend to reciprocal reactions during stimulation of positive and negative emotiogenic structures. Inhibitory and excitatory influences of the respectively positive and negative emotiogenic structures on pyramidal neurones are due to indirect modulating actions on presynaptic structures.

Animals↗

[The evaluation of corticosteroid hormone receptor status in the brain structures of stressed and adrenalectomized rats].

The value of receptor capacity in respect to cytosol concentration was shown to vary, therefore two criteria are proposed for estimation of condition of the cytosol corticosteroid receptors: the density of the receptors in tissue and the range of intermediate (active) complex. The number of receptors in the hypophysis was shown to reduce after adrenalectomy whereas in the hypothalamus, hippocampus and striatum it increased. The range of intermediate complex was shown to change differently in different structures after stress.

Adrenal Glands↗

[In vitro malondialdehyde formation in brain structure: a method to characterize antihypoxic properties].

In vitro generated free radicals (ascorbic acid-ferric salt-mixture or hydrogen-peroxide) result in lipid peroxidation on brain cellular fractions and striatum slices an decrease of the stimulated dopamine release from rat striatum slices. Besides cysteamine, alpha-tocopherol, pyrogallol and chelating agents also tisochromide shows an antioxidative activity on lipid peroxidation induced by ascorbic acid-ferric salt-mixture. Nootropic drugs like piracetam, methylglucamine orotate, meclofenoxate hydrochloride and nicergoline are ineffective to mitochondrial malondialdehyde generation. On the other hand, piracetam exhibits a limited effect on oxidative damage of striatum slices. For that reason, the antihypoxic activity of these drugs is not accompanied by any antioxidative component and presumes a relatively high degree of tissular organization.

Animals↗

Neuroradiological assessment of brain structure and function and its implication in the pathogenesis of West syndrome.

Neuroimaging studies with magnetic resonance imaging (MRI) and positron emission tomography (PET) scanning have contributed significantly to our understanding of West syndrome. Cortical dysplastic lesions are the most common abnormalities seen with MRI in infants with spasms, but other structural lesions are also detected occasionally. An underlying cortical dysplasia may not be apparent until myelination has advanced in the brain and poor gray-white matter differentiation becomes observable. Many cortical dysplastic lesions can only be detected using PET scanning of glucose metabolism or gamma-aminobutyric acid(A) (GABA(A)) receptor binding. The MRI and PET findings, together with neurophysiological observations, strongly suggest that infantile spasms are initiated as cortical epileptic discharges that, during a 'critical' developmental period, may undergo secondary generalization in an age-dependent mechanism to emerge as spasms. The onset of spasms often coincides with the functional maturation of cerebral cortex. Based on data from glucose metabolism PET scanning as well as electrophysiological and neurochemical findings on infants with spasms, we have postulated that the offending lesion is a focal or diffuse cortical abnormality which, at a critical stage of maturation, causes abnormal functional interactions with brainstem raphe nuclei which project widely throughout the brain. Raphe-cortical projections could mediate the hypsarrhythmic changes seen on EEG. The prominent serotonergic raphe-striatal pathway and descending spinal pathways may be responsible for secondary generalization of the cortical discharges to result in the relatively symmetric spasms. It is likely that additional factors (e.g. genetic) play a role in the manifestation of the age-specific electroclinical features of West syndrome. Recently developed PET tracers can be used to detect epileptogenic brain regions and also to investigate developmental abnormalities of serotonergic (using the tracer alpha[(11)C]methyl-L-tryptophan) and GABAergic (using [(11)C]flumazenil) neurotransmitter systems. These systems are implicated in epileptogenesis, and their involvement in the pathophysiology of West syndrome can be further addressed by future functional neuroimaging studies.

Brain↗

Brain structures in pediatric maltreatment-related posttraumatic stress disorder: a sociodemographically matched study.

BACKGROUND: Previous investigations suggest that maltreated children evidence alterations of chemical mediators of stress and adverse brain development. Previous anatomical magnetic resonance imaging (MRI) brain studies have not controlled for socioeconomic status. METHODS: In this study, 28 psychotropic naïve children and adolescents with maltreatment-related posttraumatic stress disorder (PTSD) and 66 sociodemographically similar healthy control subjects underwent comprehensive clinical assessments and anatomical MRI brain scans. RESULTS: Compared with control subjects, subjects with PTSD had smaller intracranial, cerebral, and prefrontal cortex, prefrontal cortical white matter, and right temporal lobe volumes and areas of the corpus callosum and its subregions (2, 4, 5, 6, and 7), and larger frontal lobe cerebrospinal fluid (CSF) volumes than control subjects. The total midsagittal area of corpus callosum and middle and posterior regions remained smaller in subjects with PTSD, whereas right, left, and total lateral ventricles and frontal lobe CSF were proportionally larger than in control subjects, after adjustment for cerebral volume. Brain volumes positively correlated with age of onset of PTSD trauma and negatively correlated with duration of abuse. Significant gender x group effect demonstrated greater lateral ventricular volume increases in maltreated male subjects with PTSD than maltreated female subjects with PTSD. No hippocampal differences were seen. CONCLUSIONS: These data provide further evidence to suggest that maltreatment-related PTSD is associated with adverse brain development. These data also suggest that male children may be more vulnerable to these effects.

Adolescent↗

[Participation of the serotonin-reactive brain structure in certain forms of behavior in golden hamsters].

A viviacious play of young hamsters is shown to be accompanied by a drop of the serotonin level in the brain stem and the subsequent slumber - by its rise, while the corticosteroids content of the peripheral blood with the playful behavior experiences no changes. Iprazid and 5-oxytryptophan inhibit the playful activity, while dioxyphenylalanina (DOPA) does not influence it. A similar depression of the serotonin level in the brain stem was also noted in an aggressive behavior and stress conditions arising when adult male-hamsters are grouped together. A conclusion is drawn to the effect that changes in the content of serotonin in the brain stem are not associated with the emotional colouration of the condition, but rather reflect the transition from the somnolence to a highly active behavior.

5-Hydroxytryptophan↗

[Blood-brain barrier. II. Kinetics of distribution of 3H-parahydroxyamphetamine in brain structures after intravenous administration in the rat].

Intravenously injected parahydroxyamphetamine hardly penetrates into the Central Nervous System, since, 5 minutes after injection, the tissue to plamsa concentration ratio for brain and cerebrospinal fluid amounts to 0,67 and 0,35 respectively. Its concentration in muscle is 5 times higher than in plasma. In the brain, the molecule is preferentialy taken up by the corpus striatum and the hypothalamus. Thus, parahydroxylation of amphetamine inhibits the penetration of the molecule into the brain and suppresses its cortical fixation. These characteristics could explain why this parahydroxylated amine has no psychotropic action.

Amphetamines↗