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Dive into the research topics where Valérie Gailus-Durner is active.

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Featured researches published by Valérie Gailus-Durner.


Cell | 2009

A Humanized Version of Foxp2 Affects Cortico-Basal Ganglia Circuits in Mice

Wolfgang Enard; Sabine Gehre; Kurt Hammerschmidt; Sabine M. Hölter; Torsten Blass; Martina K. Brückner; Christiane Schreiweis; Christine Winter; Reinhard Sohr; Lore Becker; Victor Wiebe; Birgit Nickel; Thomas Giger; Uwe Müller; Matthias Groszer; Thure Adler; Antonio Aguilar; Ines Bolle; Julia Calzada-Wack; Claudia Dalke; Nicole Ehrhardt; Jack Favor; Helmut Fuchs; Valérie Gailus-Durner; Wolfgang Hans; Gabriele Hölzlwimmer; Anahita Javaheri; Svetoslav Kalaydjiev; Magdalena Kallnik; Eva Kling

It has been proposed that two amino acid substitutions in the transcription factor FOXP2 have been positively selected during human evolution due to effects on aspects of speech and language. Here, we introduce these substitutions into the endogenous Foxp2 gene of mice. Although these mice are generally healthy, they have qualitatively different ultrasonic vocalizations, decreased exploratory behavior and decreased dopamine concentrations in the brain suggesting that the humanized Foxp2 allele affects basal ganglia. In the striatum, a part of the basal ganglia affected in humans with a speech deficit due to a nonfunctional FOXP2 allele, we find that medium spiny neurons have increased dendrite lengths and increased synaptic plasticity. Since mice carrying one nonfunctional Foxp2 allele show opposite effects, this suggests that alterations in cortico-basal ganglia circuits might have been important for the evolution of speech and language in humans.


PLOS Biology | 2010

Post-Stroke Inhibition of Induced NADPH Oxidase Type 4 Prevents Oxidative Stress and Neurodegeneration

Christoph Kleinschnitz; Henrike Grund; Kirstin Wingler; Melanie E. Armitage; Emma S. Jones; Manish Mittal; David Barit; Tobias Schwarz; Christian Geis; Peter Kraft; Konstanze Barthel; Michael K. Schuhmann; Alexander M. Herrmann; Sven G. Meuth; Guido Stoll; Sabine Meurer; Anja Schrewe; Lore Becker; Valérie Gailus-Durner; Helmut Fuchs; Thomas Klopstock; Martin Hrabé de Angelis; Karin Jandeleit-Dahm; Ajay M. Shah; Norbert Weissmann; Harald Schmidt

The identification of NOX4 as a major source of oxidative stress in stroke and demonstration of dramatic protection after stroke in mice by NOX4 deletion or NOX inhibition, opens up new avenues for treatment.


Journal of Clinical Investigation | 2013

Rapamycin extends murine lifespan but has limited effects on aging.

Frauke Neff; Diana Flores-Dominguez; Devon P. Ryan; Marion Horsch; Susanne Schröder; Thure Adler; Luciana Caminha Afonso; Juan Antonio Aguilar-Pimentel; Lore Becker; Lillian Garrett; Wolfgang Hans; Moritz M. Hettich; Richard Holtmeier; Sabine M. Hölter; Kristin Moreth; Cornelia Prehn; Oliver Puk; Ildiko Racz; Birgit Rathkolb; Jan Rozman; Beatrix Naton; Rainer Ordemann; Jerzy Adamski; Johannes Beckers; Raffi Bekeredjian; Dirk H. Busch; Gerhard Ehninger; Jochen Graw; Heinz Höfler; Martin Klingenspor

Aging is a major risk factor for a large number of disorders and functional impairments. Therapeutic targeting of the aging process may therefore represent an innovative strategy in the quest for novel and broadly effective treatments against age-related diseases. The recent report of lifespan extension in mice treated with the FDA-approved mTOR inhibitor rapamycin represented the first demonstration of pharmacological extension of maximal lifespan in mammals. Longevity effects of rapamycin may, however, be due to rapamycins effects on specific life-limiting pathologies, such as cancers, and it remains unclear if this compound actually slows the rate of aging in mammals. Here, we present results from a comprehensive, large-scale assessment of a wide range of structural and functional aging phenotypes, which we performed to determine whether rapamycin slows the rate of aging in male C57BL/6J mice. While rapamycin did extend lifespan, it ameliorated few studied aging phenotypes. A subset of aging traits appeared to be rescued by rapamycin. Rapamycin, however, had similar effects on many of these traits in young animals, indicating that these effects were not due to a modulation of aging, but rather related to aging-independent drug effects. Therefore, our data largely dissociate rapamycins longevity effects from effects on aging itself.


Genome Biology | 2013

A comparative phenotypic and genomic analysis of C57BL/6J and C57BL/6N mouse strains

Michelle Simon; Simon Greenaway; Jacqueline K. White; Helmut Fuchs; Valérie Gailus-Durner; Sara Wells; Tania Sorg; Kim Wong; Elodie Bedu; Elizabeth J. Cartwright; Romain Dacquin; Sophia Djebali; Jeanne Estabel; Jochen Graw; Neil Ingham; Ian J. Jackson; Andreas Lengeling; Silvia Mandillo; Jacqueline Marvel; Hamid Meziane; Frédéric Preitner; Oliver Puk; Michel J. Roux; David J. Adams; Sarah Atkins; Abdel Ayadi; Lore Becker; Andrew Blake; Debra Brooker; Heather Cater

BackgroundThe mouse inbred line C57BL/6J is widely used in mouse genetics and its genome has been incorporated into many genetic reference populations. More recently large initiatives such as the International Knockout Mouse Consortium (IKMC) are using the C57BL/6N mouse strain to generate null alleles for all mouse genes. Hence both strains are now widely used in mouse genetics studies. Here we perform a comprehensive genomic and phenotypic analysis of the two strains to identify differences that may influence their underlying genetic mechanisms.ResultsWe undertake genome sequence comparisons of C57BL/6J and C57BL/6N to identify SNPs, indels and structural variants, with a focus on identifying all coding variants. We annotate 34 SNPs and 2 indels that distinguish C57BL/6J and C57BL/6N coding sequences, as well as 15 structural variants that overlap a gene. In parallel we assess the comparative phenotypes of the two inbred lines utilizing the EMPReSSslim phenotyping pipeline, a broad based assessment encompassing diverse biological systems. We perform additional secondary phenotyping assessments to explore other phenotype domains and to elaborate phenotype differences identified in the primary assessment. We uncover significant phenotypic differences between the two lines, replicated across multiple centers, in a number of physiological, biochemical and behavioral systems.ConclusionsComparison of C57BL/6J and C57BL/6N demonstrates a range of phenotypic differences that have the potential to impact upon penetrance and expressivity of mutational effects in these strains. Moreover, the sequence variants we identify provide a set of candidate genes for the phenotypic differences observed between the two strains.


Endocrinology | 2009

Expression pattern of G protein-coupled receptor 30 in LacZ reporter mice.

Jörg Isensee; Luca Meoli; Valeria Zazzu; Christoph S. Nabzdyk; Henning Witt; Dian Soewarto; Karin Effertz; Helmut Fuchs; Valérie Gailus-Durner; Dirk H. Busch; Thure Adler; Martin Hrabé de Angelis; Markus Irgang; Christiane Otto; Patricia Ruiz Noppinger

Multiple reports implicated the function of G protein-coupled receptor (GPR)-30 with nongenomic effects of estrogen, suggesting that GPR30 might be a G-protein coupled estrogen receptor. However, the findings are controversial and the expression pattern of GPR30 on a cell type level as well as its function in vivo remains unclear. Therefore, the objective of this study was to identify cell types that express Gpr30 in vivo by analyzing a mutant mouse model that harbors a lacZ reporter (Gpr30-lacZ) in the Gpr30 locus leading to a partial deletion of the Gpr30 coding sequence. Using this strategy, we identified the following cell types expressing Gpr30: 1) an endothelial cell subpopulation in small arterial vessels of multiple tissues, 2) smooth muscle cells and pericytes in the brain, 3) gastric chief cells in the stomach, 4) neuronal subpopulations in the cortex as well as the polymorph layer of the dentate gyrus, 5) cell populations in the intermediate and anterior lobe of the pituitary gland, and 6) in the medulla of the adrenal gland. In further experiments, we aimed to decipher the function of Gpr30 by analyzing the phenotype of Gpr30-lacZ mice. The body weight as well as fat mass was unchanged in Gpr30-lacZ mice, even if fed with a high-fat diet. Flow cytometric analysis revealed lower frequencies of T cells in both sexes of Gpr30-lacZ mice. Within the T-cell cluster, the amount of CD62L-expressing cells was clearly reduced, suggesting an impaired production of T cells in the thymus of Gpr30-lacZ mice.


The Journal of Neuroscience | 2009

Neuronal 3′,3,5-Triiodothyronine (T3) Uptake and Behavioral Phenotype of Mice Deficient in Mct8, the Neuronal T3 Transporter Mutated in Allan–Herndon–Dudley Syndrome

Eva K. Wirth; Stephan Roth; Cristiane Blechschmidt; Sabine M. Hölter; Lore Becker; Ildiko Racz; Andreas Zimmer; Thomas Klopstock; Valérie Gailus-Durner; Helmut Fuchs; Wolfgang Wurst; Thomas Naumann; Anja U. Bräuer; Martin Hrabé de Angelis; Josef Köhrle; Annette Grüters; Ulrich Schweizer

Thyroid hormone transport into cells requires plasma membrane transport proteins. Mutations in one of these, monocarboxylate transporter 8 (MCT8), have been identified as underlying cause for the Allan–Herndon–Dudley syndrome, an X-linked mental retardation in which the patients also present with abnormally high 3′,3,5-triiodothyronine (T3) plasma levels. Mice deficient in Mct8 replicate the thyroid hormone abnormalities observed in the human condition. However, no neurological deficits have been described in mice lacking Mct8. Therefore, we subjected Mct8-deficient mice to a comprehensive immunohistochemical, neurological, and behavioral screen. Several behavioral abnormalities were found in the mutants. Interestingly, some of these behavioral changes are compatible with hypothyroidism, whereas others rather indicate hyperthyroidism. We thus hypothesized that neurons exclusively dependent on Mct8 are in a hypothyroid state, whereas neurons expressing other T3 transporters become hyperthyroid, if they are exposed directly to the high plasma T3. The majority of T3 uptake in primary cortical neurons is mediated by Mct8, but pharmacological inhibition suggested functional expression of additional T3 transporter classes. mRNAs encoding six T3 transporters, including L-type amino acid transporters (LATs), were coexpressed with Mct8 in isolated neurons. We then demonstrated Lat2 expression in cultured neurons and throughout murine brain development. In contrast, LAT2 is expressed in microglia in the developing human brain during gestation, but not in neurons. We suggest that lack of functional complementation by alternative thyroid hormone transporters in developing human neurons precipitates the devastating neurodevelopmental phenotype in MCT8-deficient patients, whereas Mct8-deficient mouse neurons are functionally complemented by other transporters, for possibly Lat2.


The EMBO Journal | 2014

Aberrant methylation of tRNAs links cellular stress to neuro-developmental disorders

Sandra Blanco; Sabine Dietmann; Joana V. Flores; Shobbir Hussain; Claudia Kutter; Peter Humphreys; Margus Lukk; Patrick Lombard; Lucas Treps; Martyna Popis; Stefanie Kellner; Sabine M. Hölter; Lillian Garrett; Wolfgang Wurst; Lore Becker; Thomas Klopstock; Helmut Fuchs; Valérie Gailus-Durner; Martin Hrabĕ de Angelis; Ragnhildur Káradóttir; Mark Helm; Jernej Ule; Joseph G. Gleeson; Duncan T. Odom; Michaela Frye

Mutations in the cytosine‐5 RNA methyltransferase NSun2 cause microcephaly and other neurological abnormalities in mice and human. How post‐transcriptional methylation contributes to the human disease is currently unknown. By comparing gene expression data with global cytosine‐5 RNA methylomes in patient fibroblasts and NSun2‐deficient mice, we find that loss of cytosine‐5 RNA methylation increases the angiogenin‐mediated endonucleolytic cleavage of transfer RNAs (tRNA) leading to an accumulation of 5′ tRNA‐derived small RNA fragments. Accumulation of 5′ tRNA fragments in the absence of NSun2 reduces protein translation rates and activates stress pathways leading to reduced cell size and increased apoptosis of cortical, hippocampal and striatal neurons. Mechanistically, we demonstrate that angiogenin binds with higher affinity to tRNAs lacking site‐specific NSun2‐mediated methylation and that the presence of 5′ tRNA fragments is sufficient and required to trigger cellular stress responses. Furthermore, the enhanced sensitivity of NSun2‐deficient brains to oxidative stress can be rescued through inhibition of angiogenin during embryogenesis. In conclusion, failure in NSun2‐mediated tRNA methylation contributes to human diseases via stress‐induced RNA cleavage.


Nature | 2016

High-throughput discovery of novel developmental phenotypes.

Mary E. Dickinson; Ann M. Flenniken; Xiao Ji; Lydia Teboul; Michael D. Wong; Jacqueline K. White; Terrence F. Meehan; Wolfgang J. Weninger; Henrik Westerberg; Hibret Adissu; Candice N. Baker; Lynette Bower; James Brown; L. Brianna Caddle; Francesco Chiani; Dave Clary; James Cleak; Mark J. Daly; James M. Denegre; Brendan Doe; Mary E. Dolan; Sarah M. Edie; Helmut Fuchs; Valérie Gailus-Durner; Antonella Galli; Alessia Gambadoro; Juan Gallegos; Shiying Guo; Neil R. Horner; Chih-Wei Hsu

Approximately one-third of all mammalian genes are essential for life. Phenotypes resulting from knockouts of these genes in mice have provided tremendous insight into gene function and congenital disorders. As part of the International Mouse Phenotyping Consortium effort to generate and phenotypically characterize 5,000 knockout mouse lines, here we identify 410 lethal genes during the production of the first 1,751 unique gene knockouts. Using a standardized phenotyping platform that incorporates high-resolution 3D imaging, we identify phenotypes at multiple time points for previously uncharacterized genes and additional phenotypes for genes with previously reported mutant phenotypes. Unexpectedly, our analysis reveals that incomplete penetrance and variable expressivity are common even on a defined genetic background. In addition, we show that human disease genes are enriched for essential genes, thus providing a dataset that facilitates the prioritization and validation of mutations identified in clinical sequencing efforts.


Molecular and Cellular Biology | 2006

Generation and Characterization of dickkopf3 Mutant Mice

Ivan del Barco Barrantes; Ana Montero-Pedrazuela; Ana Guadaño-Ferraz; María Jesús Obregón; Raquel Martínez de Mena; Valérie Gailus-Durner; Helmut Fuchs; Tobias J. Franz; Svetoslav Kalaydjiev; Martina Klempt; Sabine M. Hölter; Birgit Rathkolb; Claudia Reinhard; Gabriella Morreale de Escobar; Juan Bernal; Dirk H. Busch; Wolfgang Wurst; Eckhard Wolf; Holger Schulz; Svetlana Shtrom; Erich Greiner; Martin Hrabé de Angelis; Heiner Westphal; Christof Niehrs

ABSTRACT dickkopf (dkk) genes encode a small family of secreted Wnt antagonists, except for dkk3, which is divergent and whose function is poorly understood. Here, we describe the generation and characterization of dkk3 mutant mice. dkk3-deficient mice are viable and fertile. Phenotypic analysis shows no major alterations in organ morphology, physiology, and most clinical chemistry parameters. Since Dkk3 was proposed to function as thyroid hormone binding protein, we have analyzed deiodinase activities, as well as thyroid hormone levels. Mutant mice are euthyroid, and the data do not support a relationship of dkk3 with thyroid hormone metabolism. Altered phenotypes in dkk3 mutant mice were observed in the frequency of NK cells, immunoglobulin M, hemoglobin, and hematocrit levels, as well as lung ventilation. Furthermore, dkk3-deficient mice display hyperactivity.


Methods of Molecular Biology | 2009

Systemic First-Line Phenotyping

Valérie Gailus-Durner; Helmut Fuchs; Thure Adler; Antonio Aguilar Pimentel; Lore Becker; Ines Bolle; Julia Calzada-Wack; Claudia Dalke; Nicole Ehrhardt; Barbara Ferwagner; Wolfgang Hans; Sabine M. Hölter; Gabriele Hölzlwimmer; Marion Horsch; Anahita Javaheri; Magdalena Kallnik; Eva Kling; Christoph Lengger; Corinna Mörth; Ilona Mossbrugger; Beatrix Naton; Cornelia Prehn; Oliver Puk; Birgit Rathkolb; Jan Rozman; Anja Schrewe; Frank Thiele; Jerzy Adamski; Bernhard Aigner; Heidrun Behrendt

With the completion of the mouse genome sequence an essential task for biomedical sciences in the twenty-first century will be the generation and functional analysis of mouse models for every gene in the mammalian genome. More than 30,000 mutations in ES cells will be engineered and thousands of mouse disease models will become available over the coming years by the collaborative effort of the International Mouse Knockout Consortium. In order to realize the full value of the mouse models proper characterization, archiving and dissemination of mouse disease models to the research community have to be performed. Phenotyping centers (mouse clinics) provide the necessary capacity, broad expertise, equipment, and infrastructure to carry out large-scale systemic first-line phenotyping. Using the example of the German Mouse Clinic (GMC) we will introduce the reader to the different aspects of the organization of a mouse clinic and present selected methods used in first-line phenotyping.

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Kristin Moreth

Goethe University Frankfurt

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Christoph Lengger

Wellcome Trust Sanger Institute

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