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That the human brain contains magnetite is well established; however, its spatial distribution in the brain has remained unknown. We present room temperature, remanent magnetization measurements on 822 specimens from seven dissected whole human brains in order to systematically map concentrations of magnetic remanence carriers. Median saturation remanent magnetizations from the cerebellum were approximately twice as high as those from the cerebral cortex in all seven cases (statistically significantly distinct, p = 0.016). Brain stems were over two times higher in magnetization on average than the cerebral cortex. The ventral (lowermost) horizontal layer of the cerebral cortex was consistently more magnetic than the average cerebral cortex in each of the seven studied cases. Although exceptions existed, the reproducible magnetization patterns lead us to conclude that magnetite is preferentially partitioned in the human brain, specifically in the cerebellum and brain stem.
The hippocampal formation is a brain structure integrally involved in episodic memory, spatial navigation, cognition and stress responsiveness. Structural abnormalities in hippocampal volume and shape are found in several common neuropsychiatric disorders. To identify the genetic underpinnings of hippocampal structure here we perform a genome-wide association study (GWAS) of 33,536 individuals and discover six independent loci significantly associated with hippocampal volume, four of them novel. Of the novel loci, three lie within genes (ASTN2, DPP4 and MAST4) and one is found 200 kb upstream of SHH. A hippocampal subfield analysis shows that a locus within the MSRB3 gene shows evidence of a localized effect along the dentate gyrus, subiculum, CA1 and fissure. Further, we show that genetic variants associated with decreased hippocampal volume are also associated with increased risk for Alzheimer’s disease (r\(_g\)=−0.155). Our findings suggest novel biological pathways through which human genetic variation influences hippocampal volume and risk for neuropsychiatric illness.
The Behavioral Inhibition System (BIS) as defined within the Reinforcement Sensitivity Theory (RST) modulates reactions to stimuli indicating aversive events. Gray's trait Anxiety determines the extent to which stimuli activate the BIS. While studies have identified the amygdala-septo-hippocampal circuit as the key-neural substrate of this system in recent years and measures of resting-state dynamics such as randomness and local synchronization of spontaneous BOLD fluctuations have recently been linked to personality traits, the relation between resting-state dynamics and the BIS remains unexplored. In the present study, we thus examined the local synchronization of spontaneous fMRI BOLD fluctuations as measured by Regional Homogeneity (ReHo) in the hippocampus and the amygdala in twenty-seven healthy subjects. Correlation analyses showed that Gray's trait Anxiety was significantly associated with mean ReHo in both the amygdala and the hippocampus. Specifically, Gray's trait Anxiety explained 23% and 17% of resting-state ReHo variance in the left amygdala and the left hippocampus, respectively. In summary, we found individual differences in Gray's trait Anxiety to be associated with ReHo in areas previously associated with BIS functioning. Specifically, higher ReHo in resting-state neural dynamics corresponded to lower sensitivity to punishment scores both in the amygdala and the hippocampus. These findings corroborate and extend recent findings relating resting-state dynamics and personality while providing first evidence linking properties of resting-state fluctuations to Gray's BIS.
Background: Data from clinical studies and results from animal models suggest an involvement of the neurotrophin system in the pathology of depression and antidepressant treatment response. Genetic variations within the genes coding for the brain-derived neurotrophic factor (BDNF) and its key receptor Trkb (NTRK2) may therefore influence the response to antidepressant treatment.
Methods: We performed a single and multi-marker association study with antidepressant treatment outcome in 398 depressed Caucasian inpatients participating in the Munich Antidepressant Response Signature (MARS) project. Two Caucasian replication samples (N = 249 and N = 247) were investigated, resulting in a total number of 894 patients. 18 tagging SNPs in the BDNF gene region and 64 tagging SNPs in the NTRK2 gene region were genotyped in the discovery sample; 16 nominally associated SNPs were tested in two replication samples.
Results: In the discovery analysis, 7 BDNF SNPs and 9 NTRK2 SNPs were nominally associated with treatment response. Three NTRK2 SNPs (rs10868223, rs1659412 and rs11140778) also showed associations in at least one replication sample and in the combined sample with the same direction of effects (\(P_{corr}\) = .018, \(P_{corr}\) = .015 and \(P_{corr}\) = .004, respectively). We observed an across-gene BDNF-NTRK2 SNP interaction for rs4923468 and rs1387926. No robust interaction of associated SNPs was found in an analysis of BDNF serum protein levels as a predictor for treatment outcome in a subset of 93 patients.
Conclusions/Limitations: Although not all associations in the discovery analysis could be unambiguously replicated, the findings of the present study identified single nucleotide variations in the BDNF and NTRK2 genes that might be involved in antidepressant treatment outcome and that have not been previously reported in this context. These new variants need further validation in future association studies.
Objective. Several neuroscience tools showed the involvement of auditory cortex in chronic tinnitus. In this proof-of-principle study we probed the capability of functional near-infrared spectroscopy (fNIRS) for the measurement of brain oxygenation in auditory cortex in dependence from chronic tinnitus and from intervention with transcranial magnetic stimulation. Methods. Twenty-three patients received continuous theta burst stimulation over the left primary auditory cortex in a randomized sham-controlled neuronavigated trial (verum = 12; placebo = 11). Before and after treatment, sound-evoked brain oxygenation in temporal areas was measured with fNIRS. Brain oxygenation was measured once in healthy controls (n = 12). Results. Sound-evoked activity in right temporal areas was increased in the patients in contrast to healthy controls. Left-sided temporal activity under the stimulated area changed over the course of the trial; high baseline oxygenation was reduced and vice versa. Conclusions. By demonstrating that rTMS interacts with auditory evoked brain activity, our results confirm earlier electrophysiological findings and indicate the sensitivity of fNIRS for detecting rTMS induced changes in brain activity. Moreover, our findings of trait-and state-related oxygenation changes indicate the potential of fNIRS for the investigation of tinnitus pathophysiology and treatment response.
Mutationsanalyse des Gens für das Zelladhäsionsmolekül CELSR1bei familiärer katatoner Schizophrenie
(2003)
In einer kürzlich durchgeführten Kopplungsanalyse der periodischen Katatonie wurden zwei Genloci auf Chromosom 15 und auf Chromosom 22 identifiziert. Für den Genlocus auf Chromosom 22p13.3 wurde ein LOD-Score von 1,85 (p=0,0018) ermittelt. Bei einer Durchsicht der in der fraglichen Region auf Chromosom 22 lokalisierten Gene unter Berücksichtigung ihrer Funktion, erschien CELSR1 als eines der vielversprechendsten Gene, nicht zuletzt, da es relativ selektiv im Nervensystem exprimiert wird. CELSR1 ist ein zur Gruppe der Cadherine gehörendes Zelladhäsionsmolekül. Cadherine spielen eine wichtige Rolle bei der Entwicklung des Gehirns, da sie eine Art Zellsortiermechanismus darstellen, der die Bildung spezifischer Hirnnuclei durch Zellagreggation ermöglicht. Darüber hinaus sind sie an der synaptischen Plastizität, wie sie bei neuronalen Lernvorgängen vorkommt, beteiligt [Huntley, (2002); Skaper, (2001)]. CELSR1 bildet innerhalb der Cadherine eine eigene Subgruppe. Seine Funktion scheint zum einen in der frühen Embryonalentwicklung zu liegen, zum anderen ist das Drosophila-Ortholog Flamingo einer der wichtigsten Modulatoren des Dendritenwachstums. Dementsprechend erscheint CELSR1 als interessanter Kandidat für Schizophrenien, bei denen sowohl Störungen in der Embryogenese des Gehirns, als auch eine Dysregulation der synaptischen Plastizität diskutiert wird. CELSR1 wurde in einer mutmaßlichen Promotorregion, dem Exonbereich, Exon/Intron-Übergängen und einem polymorphen Intron auf Mutationen untersucht. DNA-Proben von zwei der erkrankten Familienmitgliedern und drei Kontrollen wurden sequenziert und die so erhaltene Sequenz mittels eines Online-Analyseprogramms verifiziert. Dabei wurden 18 Allelvarianten, 12 stumme Transitionen, fünf missense-Mutationen und eine Insertion entdeckt, die aber in keiner der Patientenproben exklusiv auftrat. Mit grosser Wahrscheinlichkeit enthält CELSR1 keine krankheitsverursachende Mutation Die gefundenen Polymorphismen stellen eine interessante Ausgangsbasis für Assoziationsstudien dar.