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Alcohol consumption and abnormalities of brain structure and vasculature.

Research on how alcohol consumption influences the structure and blood supply of the brain has generally focused on two primary areas of interest: the atrophic effect of heavy drinking on brain structure and the effects of moderate and heavy drinking on the risk of stroke. Heavy alcohol consumption results in atrophy of gray and white matter, particularly in the frontal lobes, cerebellum, and limbic structures. Heavy drinking also raises the risk of ischemic and hemorrhagic stroke, while light drinking is associated with a lower risk of ischemic stroke. Recently, the author and his colleagues studied alcohol consumption and prevalence of subclinical abnormalities detected by magnetic resonance imaging of the brain among 3376 older adults enrolled in the Cardiovascular Health Study. They found that alcohol consumption was positively associated with measures of brain atrophy and inversely associated with subclinical infarcts in a dose-dependent manner. Alcohol consumption and white matter lesions had a U-shaped relationship, with the lowest prevalence among those who consumed 1-6 drinks per week. Further research is needed to determine how these associations interact to influence overall brain function.

Aging↗

Determination of information flow direction among brain structures by a modified directed transfer function (dDTF) method.

A modification of directed transfer function-direct DTF-is proposed for the analysis of direct information transfer among brain structures on the basis of local field potentials (LFP). Comparison of results obtained by the analysis of simulated and experimental data with a new dDTF and DTF method is shown. A new measure to estimate direct causal relations between signals is defined. The present results demonstrate the effectiveness of the new dDTF method and indicate that the dDTF method can be used to obtain the reliable patterns of connections between various brain structures.

Brain↗

Mapping Focal and Generalized Effects of Common Genetic Variants on Human Brain Structure.

Genome-wide association studies (GWAS) have advanced the quest to understand how specific genetic variants influence human brain structure and function. Recent work has identified hundreds of common variants associated with subcortical brain volumes, sparking interest in how these genetic markers overlap across brain networks. While this can be estimated by hierarchical clustering of the genetic correlation matrix to identify modular patterns of shared architecture, no brain-wide maps of these effects are available. To address this, we computed polygenic scores (PGS) from loci associated with ten brain volume regions of interest (ROIs): nine major subcortical structures and intracranial volume, with each locus weighted by its association with regional volume. In an independent sample from the discovery GWAS, we performed large-scale segmentation of 3D volumetric T1-weighted MRI scans using voxel-based morphometry (VBM) to map 3D profile of regions where gray matter volume (GMV) was associated with each PGS. We found statistically significant, localized effects for PGS defined for the amygdala, thalamus, and basal ganglia, but PGS for brainstem volume was associated with widespread differences throughout the brain. These brain-wide maps reveal patterns consistent with both localized and distributed genetic influences, offering a novel approach to interpret the genomic architecture of brain structure.

GWAS↗

Effects of cocaine on the contents of neurohypophyseal hormones in the plasma and in different brain structures in rats.

The effects of acute and chronic cocaine treatments on the levels of the neurohypophyseal hormones oxytocin (OXT) and vasopressin (AVP) in the plasma and in different brain structures in rats were measured by radioimmunoassay (RIA). Acute cocaine treatment had no effect on the level of OXT in the plasma or in the amygdala, but increased OXT contents were measured in the hypothalamus and in the hippocampus. The OXT levels in the basal forebrain structures (including the septum and the nucleus accumbens) were decreased by a single dose of cocaine. The acute injection of cocaine increased the level of AVP in the plasma, and decreased contents of OXT were measured in the amygdala and in the basal forebrain. Repeated treatment with cocaine decreased the level of OXT in the plasma, hypothalamus and hippocampus. The AVP contents were decreased in all of the brain structures investigated, but no change was caused in the plasma level of AVP by repeated injections of cocaine. These results demonstrate complex, region-specific interactions between cocaine and the neurohypophyseal hormones in the brain and in the periphery underlying the alteration in behavioral and autonomic functions caused by acute and chronic cocaine exposure.

Amygdala↗

[Local variation of brain structures related to C. T. reference line (author's transl)].

Median sagittal sections of the cranium of 18 males and 7 females aging from 42 to 74 years were investigated. The distance of brain structures from the skull varied about 11 to 22 mm if the orbitomeatal line is used as reference. A correlation coefficient below 0.5 is found between distances on the outside of the skull and on the median sagittal section as well in horizontal as in the vertical direction. The statistical deviation of the outline of the brain is less extended with an intracerebral reference line than with reference points on the outer surface of the skull. The localization of several telencephalic parts are correlated with the inclination angle of the brain stem. The long axis of the brain stem therefore appears to be the best reference line for localization of brain structures.

Adult↗

Brain structures of a medaka mutant, el (eyeless), in which eye vesicles do not evaginate.

Eye development and brain structures of a mutant teleost fish were investigated. The el (eyeless) mutation in medaka (Oryzias latipes) is recessive and affects eye formation; in the most severe cases, it results in the absence of eyes. Developmental studies revealed that normal eyeballs are not formed in the el mutant embryos, but small optic cup-like structures differentiate in situ in the walls of the prosencephalon without evagination. The anophthalmic el homozygous fish hatched normally, although they did not respond behaviorally to visual stimuli. A small fraction of these fish grew to adulthood. In the adult anophthalmic el homozygous fish, the brain exhibited abnormalities in several subdivisions. A pair of small abnormal protrusions was observed on the surface of the ventral telencephalon and preoptic area. Immunocytochemistry using a rhodopsin monoclonal antibody showed that opsin-positive cells were present in the abnormal structures. Bodian staining showed that the optic nerves were present near the abnormal structures, although the number of optic nerve fibers was extremely small. The optic tectum was extremely small, and the thickness of the stratum opticum and stratum fibrosum et griseum superficiale was reduced. These behavioral and morphological observations suggest that the adult anophthalmic el homozygous fish are functionally blind, although small retina-like structures were partially differentiated and persisted in the adult fish brain. Moreover, the adult anophthalmic el homozygous fish were infertile, and the sizes of the hypophysis and the hypothalamus were reduced. Thus, the el mutation affects not only the brain structures that are related to the visual system but also those related to the reproductive system.

Animals↗

Causal associations between hormone replacement therapy and brain structure: Evidence from large-scale Mendelian randomization and double machine learning.

BACKGROUND: Hormone replacement therapy (HRT) is widely prescribed for the management of hormone deficiency, particularly during menopause, yet its causal effects on human brain structure remain incompletely understood. Observational studies have reported heterogeneous associations, underscoring the need for robust causal inference. METHODS: We applied an integrated causal framework combining two-sample Mendelian Randomization (MR) and Double Machine Learning (DML) to evaluate the effects of four HRT-related exposures-age at initiation, age at cessation, ever-use of HRT, and a composite medication-based phenotype-on 1366 brain imaging-derived phenotypes from the UK Biobank. Genetic instruments were derived from large-scale GWAS summary statistics, and causal estimates were validated using non-parametric DML models with cross-fitting and performance evaluation. RESULTS: Genetic instruments for age at HRT initiation, age at cessation, and ever-use of HRT were strong (median F-statistics 16.29-36.66). MR analyses identified a causal association between later initiation of HRT and lower orientation dispersion in the right inferior cerebellar peduncle (ubm-a-542; primary finding, no pleiotropy detected). An additional association with the left tapetum FA (ubm-a-243) was identified but exhibited significant directional horizontal pleiotropy (MR-Egger intercept P = 0.001) and is excluded from primary conclusions (Supplementary Note S2). Later cessation of HRT was associated with increased cortical thickness in the left middle occipital gyrus, reduced surface area in the left frontopolar cortex, and increased orientation dispersion in the splenium of the corpus callosum. Ever-use of HRT was causally linked to larger volumes of the right inferior frontal gyrus and right nucleus accumbens. These associations were corroborated by independent DML validation, which provided causally debiased estimates robust to high-dimensional confounding. Results for ukb-b-8080 (median F = 1.45) are provided in Supplementary Note S1 only; weak-instrument bias precludes causal inference. CONCLUSIONS: This study provides genetic-instrument-based and machine-learning-validated evidence for causal associations between HRT exposure-particularly its timing and lifetime use-and specific features of human brain structure, including white-matter microarchitecture, cortical thickness, and regional brain volume. These findings are FDR-controlled within exposures and independently replicated by DML, but require replication in external neuroimaging GWAS cohorts to establish definitive causal conclusions. They highlight the neurobiological relevance of sex steroid exposure and inform future research on brain aging and personalized hormone-based interventions.

Humans↗

Chronic social stress: effects on limbic brain structures.

Different types of stressors are known to activate distinct neuronal circuits in the brain. Acute physiological stimuli that are life threatening and require immediate reactions lead to a rapid stimulation of brainstem and hypothalamus to activate efferent visceral pathways. In contrast, psychological stressors activate higher-order brain structures for further interpretations of the perceived endangerment. Common to the later multimodal stressors is that they need cortical processing and, depending on previous experience or ongoing activation, the information is assembled within limbic circuits connecting, e.g., the hippocampus, amygdala and prefrontal cortex to induce neuroendocrine and behavioral responses. In view of the fact that stressful life events often contribute to the etiology of psychopathologies such as depressive episodes, several animal models have been developed to study central nervous mechanisms that are induced by stress. The present review summarizes observations made in the tree shrew chronic psychosocial stress paradigm with particular focus on neurotransmitter systems and structural changes in limbic brain regions.

Amygdala↗

[Correlation between the functional status of brain structures and the degree of coherence of their potentials during food-getting behavior in the dog].

By means of the cited formula, integral indices of potential coherence of the following pairs of brain structures were calculated: hippocampus--frontal cortex, amygdala--frontal cortex, hippocampus--amygdala. In food-procuring behavior of dogs, the values of these indices increase simultaneously with the increase of the level of functional state of the brain structures. The values become higher under the action of a signal with a greater informational significance for alimentary need satisfaction than under the action of a signal with lesser informational significance.

Amygdala↗

Acute or repeated cocaine administration generates reactive oxygen species and induces antioxidant enzyme activity in dopaminergic rat brain structures.

Either a single (acute) or repeated daily (chronic) injections (1 injection/day) of 20 mg/kg cocaine for 10 days to rats was found to increase reactive oxygen species production in two dopaminergic brain structures, the frontal cortex and the striatum. We found that the mitochondrial genome was down-regulated after acute cocaine injection. Hydroperoxide and lipid peroxide generation was correlated with an increase in mitochondrial hydrogen peroxide generation and with a reduced functioning of mitochondrial complex I in response to cocaine. As judged from the measurement of caspase-3 activity and TUNEL labeling, neither acute nor chronic cocaine treatment has been found to induce apoptosis in any of the structures examined. This differs dramatically from what has been described for methamphetamine. Cocaine-induced radical formation was accompanied by the induction of the antioxidant enzymes superoxide dismutase and glutathione peroxidase, after both acute and chronic cocaine treatment. In addition, proteasome chymotrypsin-like activity was enhanced following a single cocaine injection in both cortex and striatum. It is proposed that the compensatory mechanisms to oxidative stress occurring in response to cocaine were effective in scavenging reactive oxygen species and in preventing subsequent cellular damage, thus explaining why no significant cell death was found in these brain structures.

Animals↗

[Is there any connection between structural brain changes and schizophrenia?].

Schizophrenia is a heterogeneous disorder. Structural brain abnormalities have been found in a subgroup, but the underlying mechanisms are not fully understood. In some patients the changes in the brain are diffuse, in others more focal, and no single site has been found to be responsible for the illness. The brain lesions are commonly believed to be present before the onset of the illness, and are mainly non-progressive. They may act as non-specific markers of developmental and/or perinatal abnormalities associated with the disease. However, the abnormalities vary from patient to patient, and are non-specific. It is uncertain whether they are primary or secondary events in the course of the illness.

Brain↗

The effect of repeated administration of antidepressant drugs on the thyrotropin-releasing hormone (TRH) content of rat brain structures.

The present study investigated the effect of repeated treatment with the antidepressant drugs imipramine, amitryptyline, citalopram and mianserin (10 mg/kg PO, twice daily for 14 days) on levels of thyrotropin-releasing hormone (TRH) in several brain structures (cerebral cortex, amygdala + pyriform cortex, hippocampus, nucleus accumbens, striatum and hypothalamus) of the rat. Amitriptyline caused a marked increase in the TRH content in the striatum and nucleus accumbens. Citalopram and mianserin produced a smaller but significant increase in the TRH content in the striatum only, while imipramine did not significantly affect the TRH concentrations in any of the brain structures. None of the antidepressant drugs administered acutely significantly affected the TRH concentrations in the nucleus accumbens or the striatum. These results indicate that changes in brain TRH induced by antidepressant drugs are not related to their therapeutic activity.

Amitriptyline↗

[The biopsy of brain structures in patients with extrapyramidal hyperkinesia].

A new device for brain biopsy is presented, the techniques and method of biopsy of brain structures are described which allow full value biopsy material to be obtained from any area of the brain with minimal risk for the patient and high accuracy of hitting the aim. Biopsy of the cerebral and cerebellar cortex, and thalamic and cerebellar nuclei was conducted in 82 patients during stereotaxic operations (34 patients with infantile cerebral paralysis, 8 with torsion dystonia, 8 with spasmodic torticollis). Stereotaxic biopsy of brain tumors of various localization was also performed in 20 patients.

Basal Ganglia Diseases↗

Relationship of obstetric complications and differences in size of brain structures in monozygotic twin pairs discordant for schizophrenia.

OBJECTIVE: The aim of the study was to determine whether a history of obstetric complications and congenital minor physical anomalies are related to differences in the characteristics of brain structures observed within monozygotic twin pairs discordant for schizophrenia. METHOD: The size of the bilateral hippocampi and cerebral ventricles was studied by magnetic resonance imaging in 22 monozygotic twin pairs discordant for schizophrenia. Obstetric complications and minor physical anomalies were independently assessed through parental report and examination, respectively. RESULTS: Compared with the well co-twins, the ill twins consistently had smaller left and right hippocampi as well as larger left lateral ventricles and third ventricles. Relatively small left and right hippocampi were each significantly related to labor-delivery complications and to prolonged labor per se. Relatively large right lateral ventricle size and large total ventricle size were significantly related to labor-delivery complications, prolonged labor, neonatal complications, and total complications for the entire reproductive sequence. In contrast, these brain size differences were not significantly associated with pregnancy complications or minor physical anomalies. CONCLUSIONS: Trauma at the time of labor and delivery and especially prolonged labor appear to be of importance for brain structure anomalies associated with schizophrenia.

Adult↗

Circadian rhythms and contents of catechols in different brain structures, peripheral organs and plasma of the Atlantic cod, Gadus morhua.

Diurnal variations in the concentrations of the catechols (CA) L-DOPA (LD), dopamine (DA), noradrenaline (NA), adrenaline (A) and DOPAC were determined in different brain parts, peripheral organs and plasma of the Atlantic cod, Gadus morhua, over a 24-hr period of artificial standard laboratory conditions and natural light (dark interval: 22.11-04.14). Three to four fishes were captured at 3-hourly intervals and killed by breaking their necks. The organs were dissected out and prepared using the alumina extraction procedure and subsequently analysed in an HPLC-system with electrochemical detection. In the brain structures (telencephalon, optic lobes, medulla oblongata + pons and hypothalamus), the CA levels showed a bimodal pattern with peaks at 16.00-19.00 and 07.00. The catecholamines (CAM) DA, NA and A exhibited the same pattern in the spleen, while NA and A in the heart and NA in plasma varied in a trimodal rhythm with peaks at 19.00, 01.00-04.00 and 07.00. The distribution of CAs and ratios of CAMs in the various brain structures, peripheral organs and plasma are given. The mean concentrations were calculated from the mean of eight groups of cod, taken over a 24-hr period. The results obtained are discussed in relation to the activity pattern of the cod and the differences in CA levels and rhythms between central structures, peripheral organs and plasma of the cod are discussed in relation to other studies on CA levels and rhythmic variations of CAs in related animals.

3,4-Dihydroxyphenylacetic Acid↗

Visually evoked potentials in cortical and subcortical brain structures of conscious rabbits with chronically implanted electrodes. Standardized normal values and the influence of some psychopharmacological agents on them.

By means of a modified and simplified surgical and implantation technique, standardized values for visually evoked potentials (EP) from 7 brain structures (caudate nucleus, posterior hypothalamus, mesencephalic reticular formation, intra-laminar thalamic nuclei, amygdala, dorsal hippocampus and visual cortex) are obtained. The importance of a careful selection of the animal material, constant test conditions and the selection of test parameters as a prerequisite for the assessment of psychotropic drugs is emphasized and discussed. As an example of the specific influence on visually evoked potentials in the above named brain structures, the effects of haloperidol and amytriptyline on latencies and amplitudes of the individual parameters of EPs are described. It is assumed that the method described can be of great assistance for investigation and classification of newly developed substances.

Amitriptyline↗

[Enkephalin and cyclic nucleotide content in the brain structures of rats at different stages of the formation and development of alcoholic dependence].

Rats with increased alcohol motivation have been found to have a rise in enkephalin levels in limbic cortex and a decrease in met-enkephalin levels in the brain basal ganglia. Reduction of met-enkephalin to leu-enkephalin ratio in basal ganglia, limbic cortex and hypothalamus may serve as an index of increased inclination to ethanol in these animals. Alcohol dependence is characterized by reduced cAMP content in the majority of brain structures studied, sharply decreased met-enkephalin levels in limbic cortex and hypothalamus, and diminished cAMP and cGMP content in hypothalamus. In the third stage of experimental alcoholism the partial normalization of met-enkephalin and cAMP levels is observed in brain structures, with cGMP content increased in hypothalamus and considerably reduced in basal ganglia.

Alcoholism↗