@article{PfeifferGoetzXiangetal.2013, author = {Pfeiffer, Verena and G{\"o}tz, Rudolf and Xiang, Chaomei and Camarero, Guadelupe and Braun, Attila and Zhang, Yina and Blum, Robert and Heinsen, Helmut and Nieswandt, Bernhard and Rapp, Ulf R.}, title = {Ablation of BRaf Impairs Neuronal Differentiation in the Postnatal Hippocampus and Cerebellum}, series = {PLoS ONE}, volume = {8}, journal = {PLoS ONE}, number = {3}, doi = {10.1371/journal.pone.0058259}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-130304}, pages = {e58259}, year = {2013}, abstract = {This study focuses on the role of the kinase BRaf in postnatal brain development. Mice expressing truncated, non-functional BRaf in neural stem cell-derived brain tissue demonstrate alterations in the cerebellum, with decreased sizes and fuzzy borders of the glomeruli in the granule cell layer. In addition we observed reduced numbers and misplaced ectopic Purkinje cells that showed an altered structure of their dendritic arborizations in the hippocampus, while the overall cornus ammonis architecture appeared to be unchanged. In male mice lacking BRaf in the hippocampus the size of the granule cell layer was normal at postnatal day 12 (P12) but diminished at P21, as compared to control littermates. This defect was caused by a reduced ability of dentate gyrus progenitor cells to differentiate into NeuN positive granule cell neurons. In vitro cell culture of P0/P1 hippocampal cells revealed that BRaf deficient cells were impaired in their ability to form microtubule-associated protein 2 positive neurons. Together with the alterations in behaviour, such as autoaggression and loss of balance fitness, these observations indicate that in the absence of BRaf all neuronal cellular structures develop, but neuronal circuits in the cerebellum and hippocampus are partially disturbed besides impaired neuronal generation in both structures.}, language = {en} } @article{SchmittTatschVollhardtetal.2022, author = {Schmitt, Andrea and Tatsch, Laura and Vollhardt, Alisa and Schneider-Axmann, Thomas and Raabe, Florian J. and Roell, Lukas and Heinsen, Helmut and Hof, Patrick R. and Falkai, Peter and Schmitz, Christoph}, title = {Decreased oligodendrocyte number in hippocampal subfield CA4 in schizophrenia: a replication study}, series = {Cells}, volume = {11}, journal = {Cells}, number = {20}, issn = {2073-4409}, doi = {10.3390/cells11203242}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-290360}, year = {2022}, abstract = {Hippocampus-related cognitive deficits in working and verbal memory are frequent in schizophrenia, and hippocampal volume loss, particularly in the cornu ammonis (CA) subregions, was shown by magnetic resonance imaging studies. However, the underlying cellular alterations remain elusive. By using unbiased design-based stereology, we reported a reduction in oligodendrocyte number in CA4 in schizophrenia and of granular neurons in the dentate gyrus (DG). Here, we aimed to replicate these findings in an independent sample. We used a stereological approach to investigate the numbers and densities of neurons, oligodendrocytes, and astrocytes in CA4 and of granular neurons in the DG of left and right hemispheres in 11 brains from men with schizophrenia and 11 brains from age- and sex-matched healthy controls. In schizophrenia, a decreased number and density of oligodendrocytes was detected in the left and right CA4, whereas mean volumes of CA4 and the DG and the numbers and density of neurons, astrocytes, and granular neurons were not different in patients and controls, even after adjustment of variables because of positive correlations with postmortem interval and age. Our results replicate the previously described decrease in oligodendrocytes bilaterally in CA4 in schizophrenia and point to a deficit in oligodendrocyte maturation or a loss of mature oligodendrocytes. These changes result in impaired myelination and neuronal decoupling, both of which are linked to altered functional connectivity and subsequent cognitive dysfunction in schizophrenia.}, language = {en} } @phdthesis{Wycislo2007, author = {Wycislo, Matthias}, title = {Endotheliale Stickstoffmonoxidsynthase (NOS-III) reguliert die Proliferation neuraler Stammzellen im adulten Gyrus dentatus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-30355}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2007}, abstract = {Die Proliferation von in der Subgranul{\"a}rzone des Gyrus dentatus ans{\"a}ssigen neuralen Stammzellen ist der erste Schritt der Neuentstehung von Nervenzellen im adulten Organismus, der so genannten adulten Neurogenese, die in bestimmten neurogenen Nischen des ZNS von S{\"a}ugetieren und des Menschen vorkommt. Die vorliegende Arbeit zeigt, dass das Enzym endotheliale Stickstoffmonoxidsynthase (NOS-III bzw. eNOS) bzw. durch NOS-III gebildetes Stickstoffmonoxid (NO) die Proliferation neuraler Stamm- bzw. Vorl{\"a}uferzellen im Gyrus dentatus des Hippokampus positiv reguliert, da M{\"a}use, bei denen das Gen f{\"u}r dieses Enzym deletiert ist, {\"u}ber eine signifikant erniedrigte Stammzellproliferation verf{\"u}gen. NOS-III-Knockout-M{\"a}use zeigen außerdem erh{\"o}hte Volumina von Substrukturen des Gyrus dentatus. Biometrische Faktoren, wie z. B. Alter, Geschlecht, K{\"o}rpergewicht, Umgebungsbedingungen, hatten dagegen keinen signifikanten Einfluss auf die adulte Neurogenese. Die Abnahme der adulten Neurogenese bei NOS-III-Knockout-Tieren ist fast vollst{\"a}ndig auf die Reduktion der Stammzellproliferation in der Subgranul{\"a}rzone des Gyrus dentatus zur{\"u}ckzuf{\"u}hren. Ein Netto-Zuwachs an neu gebildeten Neuronen 4 Wochen nach Proliferation kann jedoch durch NOS-III nicht bewirkt werden, was auf eine komplexe Regulation der adulten Neurogenese hinweist. Die Stammzellproliferation im adulten murinen Gyrus dentatus wird jedoch vermutlich unter anderem {\"u}ber im Endothel gebildetes NO (als gasf{\"o}rmiges, parakrines Signalmolek{\"u}l) vermittelt.}, subject = {Neurogenese}, language = {de} } @article{BauneKonradGrotegerdetal.2012, author = {Baune, Bernhard T. and Konrad, Carsten and Grotegerd, Dominik and Suslow, Thomas and Birosova, Eva and Ohrmann, Patricia and Bauer, Jochen and Arolt, Volker and Heindel, Walter and Domschke, Katharina and Sch{\"o}ning, Sonja and Rauch, Astrid V. and Uhlmann, Christina and Kugel, Harald and Dannlowski, Udo}, title = {Interleukin-6 gene (IL-6): a possible role in brain morphology in the healthy adult brain}, series = {Journal of Neuroinflammation}, volume = {9}, journal = {Journal of Neuroinflammation}, number = {125}, doi = {10.1186/1742-2094-9-125}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-130804}, year = {2012}, abstract = {Background: Cytokines such as interleukin 6 (IL-6) have been implicated in dual functions in neuropsychiatric disorders. Little is known about the genetic predisposition to neurodegenerative and neuroproliferative properties of cytokine genes. In this study the potential dual role of several IL-6 polymorphisms in brain morphology is investigated. Methodology: In a large sample of healthy individuals (N = 303), associations between genetic variants of IL-6 (rs1800795; rs1800796, rs2069833, rs2069840) and brain volume (gray matter volume) were analyzed using voxel-based morphometry (VBM). Selection of single nucleotide polymorphisms (SNPs) followed a tagging SNP approach (e. g., Stampa algorigthm), yielding a capture 97.08\% of the variation in the IL-6 gene using four tagging SNPs. Principal findings/results In a whole-brain analysis, the polymorphism rs1800795 (-174 C/G) showed a strong main effect of genotype (43 CC vs. 150 CG vs. 100 GG; x = 24, y = -10, z = -15; F(2,286) = 8.54, p(uncorrected) = 0.0002; p(AlphaSim-corrected) = 0.002; cluster size k = 577) within the right hippocampus head. Homozygous carriers of the G-allele had significantly larger hippocampus gray matter volumes compared to heterozygous subjects. None of the other investigated SNPs showed a significant association with grey matter volume in whole-brain analyses. Conclusions/significance: These findings suggest a possible neuroprotective role of the G-allele of the SNP rs1800795 on hippocampal volumes. Studies on the role of this SNP in psychiatric populations and especially in those with an affected hippocampus (e.g., by maltreatment, stress) are warranted.}, language = {en} } @article{KimFranckKangetal.2015, author = {Kim, Jae Ho and Franck, Julien and Kang, Taewook and Heinsen, Helmut and Ravid, Rivka and Ferrer, Isidro and Cheon, Mi Hee and Lee, Joo-Yong and Yoo, Jong Shin and Steinbusch, Harry W. and Salzet, Michel and Fournier, Isabelle and Park, Young Mok}, title = {Proteome-wide characterization of signalling interactions in the hippocampal CA4/DG subfield of patients with Alzheimer's disease}, series = {Scientific Reports}, volume = {5}, journal = {Scientific Reports}, number = {11138}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-151727}, year = {2015}, abstract = {Alzheimer's disease (AD) is the most common form of dementia; however, mechanisms and biomarkers remain unclear. Here, we examined hippocampal CA4 and dentate gyrus subfields, which are less studied in the context of AD pathology, in post-mortem AD and control tissue to identify possible biomarkers. We performed mass spectrometry-based proteomic analysis combined with label-free quantification for identification of differentially expressed proteins. We identified 4,328 proteins, of which 113 showed more than 2-fold higher or lower expression in AD hippocampi than in control tissues. Five proteins were identified as putative AD biomarkers (MDH2, PCLO, TRRAP, YWHAZ, and MUC19 isoform 5) and were cross-validated by immunoblotting, selected reaction monitoring, and MALDI imaging. We also used a bioinformatics approach to examine upstream signalling interactions of the 113 regulated proteins. Five upstream signalling (IGF1, BDNF, ZAP70, MYC, and cyclosporin A) factors showed novel interactions in AD hippocampi. Taken together, these results demonstrate a novel platform that may provide new strategies for the early detection of AD and thus its diagnosis.}, language = {en} }