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Sonstige beteiligte Institutionen
- Johns Hopkins School of Medicine (18)
- Fraunhofer-Institut für Silicatforschung ISC (8)
- IZKF Nachwuchsgruppe Geweberegeneration für muskuloskelettale Erkrankungen (7)
- Akademie der Wissenschaften und der Literatur, Mainz (6)
- DFG Forschungsgruppe 2757 / Lokale Selbstregelungen im Kontext schwacher Staatlichkeit in Antike und Moderne (LoSAM) (6)
- Clinical Trial Center (CTC) / Zentrale für Klinische Studien Würzburg (ZKSW) (5)
- Helmholtz Institute for RNA-based Infection Research (HIRI) (5)
- Johns Hopkins University School of Medicine (5)
- Universität Leipzig (5)
- Universitätsklinikum Würzburg (5)
- Wilhelm-Conrad-Röntgen-Forschungszentrum für komplexe Materialsysteme (5)
- Bernhard-Heine-Centrum für Bewegungsforschung (4)
- Johns Hopkins School of Medicine, Baltimore, MD, U.S. (4)
- Universität Bayreuth (4)
- Deutsches Archäologisches Institut (3)
- Fraunhofer Institut für Silicatforschung ISC (3)
- Fraunhofer-Institut für Silicatforschung (3)
- Klinikum Fulda (3)
- König-Ludwig-Haus Würzburg (3)
- Professur für Museologie (3)
- Technische Hochschule Nürnberg Georg Simon Ohm (3)
- The Italian Federation of Parks and Nature Reserves (3)
- Universitätsklinikum Münster (3)
- Zentraleinheit Klinische Massenspektrometrie (3)
- ALPARC - The Alpine Network of Protected Areas (2)
- CHC Würzburg (Comprehensive Hearing Center) (2)
- Center for Interdisciplinary Clinical Research, Würzburg University, Würzburg, Germany (2)
- Comprehensive Cancer Center Mainfranken (2)
- Department of Biomedical Imaging, National Cerebral and Cardiovascular Research Center, Suita, Japan (2)
- Deutsches Zentrum für Herzinsuffizienz (2)
- Deutsches Zentrum für Luft- und Raumfahrt (DLR), Institut für Raumfahrtsysteme (2)
- Deutsches Zentrum für Luft- und Raumfahrt e.V. (2)
- Division of Medical Technology and Science, Department of Medical Physics and Engineering, Course of Health Science, Osaka University Graduate School of Medicine, Suita Japan (2)
- EMBL Heidelberg (2)
- Eurac research (2)
- Fraunhofer ISC (2)
- Fraunhofer-Institut für Silicatforschung ISC, Würzburg (2)
- Hochschule Aalen (2)
- Institut for Molecular Biology and CMBI, Department of Genomics, Stem Cell Biology and Regenerative Medicine, Leopold-Franzens-University Innsbruck, Innsbruck, Austria (2)
- Institut für Optik und Atomare Physik, Technische Universität Berlin, 10623 Berlin, Germany (2)
- Institut für Tierökologie und Tropenbiologie (2)
- Interdisciplinary Center for Clinical Research (2)
- Interdisziplinäres Zentrum für Klinische Forschung (IZKF) (2)
- International Max Planck Research School Molecular Biology, University of Göttingen, Germany (2)
- Johns Hopkins School of Medicine, The Russell H Morgan Department of Radiology and Radiological Science, Baltimore, MD, USA (2)
- Joslin Diabetes Center (Harvard Medical School) (2)
- Klinik für Kinder- und Jugendmedizin des Caritas-Krankenhauses Bad Mergentheim (2)
- Klinische Studienzentrale (Universitätsklinikum) (2)
- Krankenhaushygiene und Antimicrobial Stewardship (2)
- Krankenhaushygiene und Antimicrobial Stewardship (Universitätsklinikum) (2)
- Krankenhaushygiene und Antimicrobial Stewardship, Universitätsklinikum Würzburg (2)
- Laboratory for Chemistry and Life Science, Institute of Innovative Research, Tokyo Institute of Technology, Yokohama 226-8503, Japan (2)
- Lehrkrankenhaus II. Medizinische Klinik Klinikum Coburg (2)
- Mildred Scheel Early Career Center (2)
- Mildred-Scheel-Nachwuchszentrum (2)
- Naturalis Biodiversity Centre (2)
- Orthopädische Klinik König-Ludwig-Haus (2)
- Orthopädische Klinik und Poliklinik der Universität Würzburg (2)
- Rudolf Virchow Center for Integrative and Translational Bioimaging, University of Würzburg (2)
- Röntgen Center for Complex Material Systems (RCCM), Am Hubland, 97074 W¨urzburg, Germany (2)
- Salzburg Institute for Regional Planning and Housing (2)
- Siemens AG (2)
- Technische Universität Dresden (2)
- Universität Belgrad, Serbien (2)
- Urban Planning Institute of the Republic of Slovenia (2)
- VolkswagenStiftung (2)
- Würzburg-Dresden Cluster of Excellence ct.qmat (2)
- ZVES Würzburg (Zentrum für vorsprachliche Entwicklung und Entwicklungsstörungen) (2)
- Zentrallabor, Universitätsklinikum Würzburg (2)
- Zentrum für Infektionsforschung (ZINF) Würzburg (2)
- Zentrum für Lehrerbildung und Bildungsforschung (2)
- Zentrum für Telematik e.V. (2)
- Ökologische Station Fabrikschleichach (2)
- ACC GmbH Analytical Clinical Concepts (1)
- ALPARC - Das Netzwerk Alpiner Schutzgebiete (1)
- ATLAS Collaboration (1)
- Abteilung Molekulare Innere Medizin (1)
- Abteilung für Molekulare Onkoimmunologie (1)
- Adam Opel AG (1)
- Agricultural Center, BASF SE, 67117 Limburgerhof, Germany (1)
- Airbus Defence and Space GmbH (1)
- Albert-Ludwigs-Universität Freiburg (1)
- Alte Geschichte (1)
- Anthropology Department University of Tennessee, Knoxville (1)
- Apotheke, Universitätsklinikum Würzburg (1)
- Arizona State University, Tempe, Arizona, USA (1)
- Auftrag der Rummelsberger Dienste für Menschen mit Behinderung gGmbH; Aktion Mensch (1)
- BMBF (1)
- Badisches Landesmuseum Karlsruhe (1)
- Bavarian Center for Applied Energy Research (ZAE Bayern), 97074 Würzburg, Germany (1)
- Bavarian Center for Applied Energy Research e.V. (ZAE Bayern) (1)
- Bayer AG, Research & Development, Pharmaceuticals, Investigational Toxicology (1)
- Bayerische Museumsakademie (1)
- Bayerisches Geoinstitut, Universität Bayreuth (1)
- Bayerisches Zentrum für Angewandte Energieforschung e.V. (1)
- Betriebsärztlicher Dienst der Universität Würzburg (1)
- Beuth Hochschule für Technik Berlin (1)
- Bezirk Unterfranken (1)
- Bio-Imaging Center Würzburg (1)
- Biomedical Center Munich, Department of Physiological Chemistry, Ludwig-Maximilians-Universität München (1)
- Biomedizinische NMR Forschungs GmbH am Max-Planck-Institut fuer biophysikalische Chemie (1)
- Blindeninstitut, Ohmstr. 7, 97076, Wuerzburg, Germany (1)
- Boehringer Ingelheim Pharma GmbH & Co. KG (1)
- Boston Children's Hospital (1)
- Broad Institute, USA (1)
- Brown University (1)
- Bugando Medical Center in Mwanza, Tansania (1)
- Bundesinstitut für Arzneimittel und Medizinprodukte (1)
- Bundeswehr Institute of Radiobiology affiliated to the University of Ulm, Munich, Germany (1)
- Bungando Medical Centre, Mwanza, Tanzania (1)
- CAPES - Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - the development agency of the Brazilian Federal Government (1)
- CBIO, University of Cape Town, South Africa (1)
- CERN (1)
- CERN (Geneva, Switzerland) (1)
- CIBSS Centre for Integrative Biological Signalling Studies, University of Freiburg (1)
- CUHAS Catholic University of Health and Allied Sciences Mwanza (1)
- CUHAS Catholic university of health and allied science, Mwanza, Tanzania (1)
- California Institute of Technology (1)
- Caritas-Krankenhaus Bad Mergentheim (1)
- Carl-Ludwig-Institut für Physiologie, Universität Leipzig (1)
- Catholic University of Health and Allied Sciences in Mwanza, Tansania (1)
- Center for Computational and Theoretical Biology (CCTB), Universität Würzburg (1)
- Center for Nanoscale Microscopy and Molecular Physiology of the Brain (CNMPB), Göttingen, Germany (1)
- Center for Nanosystems Chemistry (1)
- Center for Nanosystems Chemistry (CNC), University of Würzburg (1)
- Center for Nanosystems Chemistry (CNC), Universität Würzburg (1)
- Center for Nanosystems Chemistry (CNC), Universität Würzburg, Am Hubland, 97074 Würzburg, Germany (1)
- Center of Excellence for Science and Technology - Integration of Mediterranean region (STIM), Faculty of Science, University of Split, Poljička cesta 35, 2100 Split, Croatia (1)
- Centre for Political Studies, Jawaharlal Nehru University, New Delhi (1)
- Chair of Experimental Biomedicine I (1)
- Charles University, Faculty of Mathematics and Physics, Ke Karlovu 5, 121 16 Prague, Czech Republic (1)
- Chemical Biology Laboratory, National Cancer Institue, Frederick (USA) (1)
- Cheng Lab, Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA (1)
- Cluster of Excellence "Multiscale Bioimaging: from Molecular Machines to Networks of Excitable Cells, Göttingen (1)
- Cologne Game Lab (1)
- Comprehensive Cancer Center Mainfranken, University Hospital Würzburg, Würzburg, Germany (1)
- Comprehensive Hearing Center (1)
- Comprehensive Hearing Center, Department of ORL, Plastic, Aesthetic and Reconstructive Head and Neck Surgery, Würzburg, Germany (1)
- Comprehensive Heart Failure Center Wuerzburg (CHFC) (1)
- Core Unit Systemmedizin (1)
- DAAD - Deutscher Akademischer Austauschdienst (1)
- DATE Lab, KITE Research Insititute, University Health Network, Toronto, Canada (1)
- DFG (1)
- DLR (1)
- DNA Analytics Core Facility, Biocenter, University of Wuerzburg, Wuerzburg, Germany (1)
- DNA Analytics Core Facility, Biocenter, University of Würzburg, Würzburg, Germany (1)
- Datenintegrationszentrum Würzburg (DIZ) (1)
- Deakin University, Australia (1)
- Departamento de Química, Facultad de Ciencias, Universidad Autónoma de Madrid, 28049 Madrid, Spain (1)
- Department Pharmazie - Zentrum für Pharmaforschung, Ludwig-Maximilians-Universität München (1)
- Department of Animal Ecology and Tropical Biology, University of Würzburg, Würzburg, Germany (1)
- Department of Biochemistry (1)
- Department of Cellular Biochemistry, University Medical Center Göttingen (1)
- Department of Cellular Biochemistry, University Medical Centre Göttingen (1)
- Department of Cellular Therapies, University of Navarra, Pamplona, Spain (1)
- Department of Chemistry, Humboldt Universität zu Berlin, Brook-Taylor-Strasse 2, 12489 Berlin, Germany (1)
- Department of Chemistry, Sungkyunkwan University, 440-746 Suwon, Republic of Korea (1)
- Department of English, Jamia Millia Islamia (A Central University), New Delhi (1)
- Department of Hematology and Oncology, Sana Hospital Hof, Hof, Germany (1)
- Department of Laboratory Medicine and Medicine Huddinge, Karolinska Institutet and University Hospital, Stockholm, Sweden (1)
- Department of Mathematical Analysis, Faculty of Mathematics and Physics, Charles University in Prague (1)
- Department of Medicinal Chemistry, University of Vienna, Althanstraße 14, 1090 Vienna, Austria (1)
- Department of Medicine A, University Hospital of Münster, Münster, Germany (1)
- Department of Molecular Biology, University Medical Center Göttingen, Germany (1)
- Department of Molecular Biology, University Medical Centre Göttingen (1)
- Department of Molecular Biology, University Medical Centre Göttingen, Göttingen 37073, Germany (1)
- Department of Nuclear Medicine, Kanazawa University (1)
- Department of Nuclear Medicine, Philipps University Marburg, Marburg, Germany (1)
- Department of Paediatric Radiology, Institute of Diagnostic and Interventional Radiology, Josef-Schneider-Straße 2, Wuerzburg 97080, Germany (1)
- Department of Pediatrics, Pediatrics I, Innsbruck Medical University, Anichstr. 35, 6020, Innsbruck, Austria (1)
- Department of Pharmaceutical Technology and Biopharmaceutics, University of Vienna, Althanstraße 14, 1090 Vienna, Austria (1)
- Department of Veterinary Sciences, Experimental Parasitology, Ludwig-Maximilians-Universität München (1)
- Department of X-ray Microscopy, University of Würzburg, Würzburg, Germany (1)
- Deutscher Akademischer Austauschdienst (DAAD) (1)
- Deutsches Archäologisches Institut, Istanbul (1)
- Deutsches Klimaservice Zentrum (GERICS) (1)
- Deutsches Krebsforschungszentrum Heidelberg (1)
- Deutsches Zentrum für Luft & Raumfahrt (DLR) (1)
- Deutsches Zentrum für Luft- und Raumfahrt (1)
- Deutsches Zentrum für Luft- und Raumfahrt (DLR) (1)
- Deutsches Zentrum für Luft- und Raumfahrt (DLR), Deutsches Fernerkundungsdatenzengrum (DFD) (1)
- Deutsches Zentrum für Präventionsforschung Psychische Gesundheit (DZPP) (1)
- Didaktik der Chemie (1)
- Didaktik der Physik (1)
- Dissertation am Institut für Sportwissenschaft, Universität Bayreuth (1)
- Département de géographie, Université Abdou Moumouni Dioffo de Niamey, Niger (1)
- EMBL Mouse Biology Unit, Monterotondo, Italien (1)
- EMBL, Structural and Computational Biology Unit, Heidelberg, Germany (1)
- ESPCI Paris (1)
- Early Clinical Trial Unit, Comprehensive Cancer Center Mainfranken (1)
- Eberhard Karls Universität Tübingen (1)
- Endokrinologie (1)
- English Department, University of Zurich (1)
- Ernst Strüngmann Institute for Neuroscience in Cooperation with Max Planck Society (ESI) (1)
- Eurac Research (1)
- Eurac Research – Istituto per lo sviluppo regionale (1)
- European Molecular Biology Laboratory, Heidelberg, Germany (1)
- European Space Agency (1)
- Evangelisches Studienwerk e.V. (1)
- Experimental Physics V, University of Wuerzburg (1)
- Experimental Radiation Oncology, Department of Radiation Oncology, University Medical Center Mannheim (1)
- Experimentelle Tumorimmunologie, Frauenklinik, Universität Würzburg (1)
- Expertenkreis zur Erarbeitung eines Stufenplans zur Diagnose und Therapie von Angsterkrankungen (1)
- FHNW Hochschule für Musik / Schola Cantorum Basiliensis (1)
- Fachbereich Physik, Universität Konstanz, D-78464 Konstanz, Germany (1)
- Fachgebiet für Populationsgenomik bei Nutztieren, Universität Hohenheim (1)
- Fachhochschule Kaiserslautern, Campus Zweibrücken (1)
- Fakultät für Chemie und chemische Biologie, Technische Universität Dortmund (1)
- Fakultät für Physik, Universität Bielefeld (1)
- Federazione Italiana Parchi e Riserve Naturali (Federparchi) (1)
- Forschungsstation Fabrikschleichach (1)
- Forschungsverbund ForChange des Bayrischen Kultusministeriums (1)
- Fraunhofer (1)
- Fraunhofer IGB - Institutsteil Würzburg Translationszentrum Regenerative Therapien für Krebs- und Muskuloskelettale Erkrankungen (1)
- Fraunhofer IGB Stuttgart (1)
- Fraunhofer IOF (1)
- Fraunhofer Insitut für Silicatforschung ISC (1)
- Fraunhofer Institut für Integrierte Schaltungen (IIS) (1)
- Fraunhofer Institut für Silicatforschung (Würzburg) (1)
- Fraunhofer Institute Interfacial Engineering and Biotechnology (IGB) (1)
- Fraunhofer Institute for Integrierte Schaltungen (IIS) (1)
- Fraunhofer Institute for Silicate Research ISC in Würzburg (1)
- Fraunhofer-Institut Würzburg (1)
- Fraunhofer-Institut für Chemische Technologie (ICT) (1)
- Fraunhofer-Institut für Silcatforschung ISC in Würzburg (1)
- Fraunhofer-Institut für Silicatforschung (ISC) in Würzburg (1)
- Fraunhofer-Institut für Silicatforschung, Würzburg (1)
- Fraunhofer-Institute for Applied Optics and Precision Engineering IOF Jena, Germany (1)
- Fraunhofer-Institute for Silicate Research ISC (1)
- Friedrich Schiller University Jena, Germany (1)
- Friedrich-Schiller-Universität Jena (1)
- GEOMAR Helmholtz-Zentrum für Ozeanforschung Kiel (1)
- Genelux Corporation, San Diego Science Center, 3030 Bunker Hill Street, Suite 310, San Diego, California 92109, USA (1)
- Georg August University School of Science (1)
- Goethe-Universität Frankfurt (1)
- Göttingen Center for Molecular Biosciences, Georg- August University Göttingen, Göttingen 37077, Germany (1)
- Göttingen Center for Molecular Biosciences, University of Göttingen (1)
- Hans-Knöll-Institut Jena (1)
- Harvard Medical School, Boston, USA (1)
- Heimatmuseum Ebern (1)
- Helmholtz Center for RNA-based Infection Research (1)
- Helmholtz Institut für RNA-basierte Infektionsforschung (1)
- Helmholtz Institute for RNA-based Infection Biology (HIRI), Josef-Schneider-Straße 2/D15, DE-9708 Wuerzburg, Germany (1)
- Helmholtz Institute for RNA-based Infection Biology (HIRI), Josef-Schneider-Straße 2/D15, DE-97080 Wuerzburg, Germany (1)
- Helmholtz Institute for RNA-based Infection Research (1)
- Helmholtz-Institut für RNA-basierte Infektionsforschung (1)
- Hochschule Wismar (1)
- Hochschule für angewandte Wissenschaften München, Fakultät für Tourismus (1)
- Hospital Augsburg, Augsburg, Germany (1)
- IBMP - Institut für Biomedizinische und Pharmazeutische Forschung in Nürnberg-Heroldsberg (1)
- IFT Institut für Therapieforschung München (1)
- INAF Padova, Italy (1)
- IZKF (Interdisziplinäres Zentrum für Klinische Forschung), Universität Würzburg (1)
- IZKF Laboratory for Microarray Applications, University Hospital of Wuerzburg, Wuerzburg, Germany (1)
- IZKF Research Laboratory Dept. Medicine II & Pediatrics (1)
- IZKF Universität Würzburg (1)
- Institut Ruđer Bošković, Zagreb, Croatia (1)
- Institut für Biopsychologie, Universität Dresden (1)
- Institut für Diagnostische und Interventionelle Radiologie des Universitätsklinikums Würzburg (1)
- Institut für Evangelische Theologie und Religionspädagogik (1)
- Institut für Humangeographie, Goethe-Universität Frankfurt am Main (1)
- Institut für Hygiene und Mikrobiologie (1)
- Institut für Klinische Epidemiologie und Biometrie des Universitätsklinikums Würzburg (1)
- Institut für Medizinische Lehre und Ausbildungsforschung, Universität Würzburg (1)
- Institut für Medizinische Mikrobiologie in Göttingen (1)
- Institut für Medizinische Mikrobiologie und Hygiene der Eberhard-Karls-Universität Tübingen (1)
- Institut für Medizintechnik Schweinfurt (IMeS) (1)
- Institut für Mikrobiologie, Universität Göttingen (1)
- Institut für Molekulare Infektionsbiologie (MIB) der Universität Würzburg (1)
- Institut für Musikphysiologie und Musiker-Medizin der Hochschule für Musik, Theater und Medien, Hannover (1)
- Institut für Neurowissenschaften der Universität Mailand (1)
- Institut für Organische Chemie, RWTH Aachen (1)
- Institut für Pathologie, Universität Würzburg (1)
- Institut für Ur- und Frühgeschichtiche Archäologie und Vorderasiatische Archäologie der Universität Heidelberg (1)
- Institut für diagnostische und interventionelle Radiologie, Klinikum Ingolstadt (1)
- Institut für klinische Neurobiologie (1)
- Institute for Biochemistry I, University of Cologne (1)
- Institute for Sustainable Chemistry & Catalysis with Boron (1)
- Institute of Cancer Research (ICR) London (1)
- Institute of Organic Chemistry and Center for Molecular Biosciences Innsbruck, CMBI, Leopold-Franzens University Innsbruck, Austria (1)
- Institute of Physics and Center for Nanotechnology, University of Münster (1)
- Institute of Transformative Bio-Molecules, Nagoya University, Nagoya, Japan (1)
- Instituto de Higiene, Universidad de la República, Montevideo, Uruguay (1)
- Instituto de Hygiene Montevideo, Uruguay (1)
- Interdisciplinary Bank of Biological Material and Data Würzburg (IBDW) (1)
- Interdisciplinary Center for Clinical Research (IZKF), Würzburg, Germany (1)
- Interdisziplinäre Biomaterial- und Datenbank Würzburg (ibdw) (1)
- Interdisziplinäre Zentrum für Klinische Forschung (IZKF) (1)
- Interdisziplinäres Zentrum für Klinische Forschung (IZKF) Würzburg (1)
- Interdisziplinäres Zentrum für Klinische Forschung (ZIKF), Würzburg (1)
- International Society for Nutritional Psychiatric Research (1)
- Istituto di Chimica dei Composti Organometallici (ICCOM–CNR), Area della Ricerca del CNR, Via Moruzzi 1, I-56124 Pisa, Italy. (1)
- Istituto di Salisburgo per la pianificazione regionale e le abitazioni (SIR) (1)
- Istituto di pianificazione urbana della Repubblica di Slovenia (UIRS) (1)
- Jacobs University Bremen, Germany (1)
- Johns Hopkins Medicine (1)
- Johns Hopkins School of Medicine, Baltimore, MD, USA (1)
- Johns Hopkins University School of Medicine, Baltimore, MD, U.S. (1)
- Johns Hopkins University, Baltimore, MD, U.S. (1)
- Johns Hopkis School of Medicine (1)
- Joslin Diabetes Center, Harvard Medical School (1)
- Julius-Maximilians-Universität Würzburg (JMU), Department of English and American Studies (1)
- Julius-von-Sachs-Institut für Biowissenschaften Lehrstuhl für Botanik II - Ökophysiologie und Vegetationsökologie (1)
- Juliusspital, Würzburg (1)
- Kardiologie (Klinik für Innere Medizin I) (1)
- KfH Nierenzentrum (1)
- Kinderklinik Bad Mergentheim (1)
- Klinik für Anästhesiologie, Universität Mainz (1)
- Klinik für Handchirurgie Bad Neustadt a.d. Saale (1)
- Klinik für Handchirurgie Bad Neustadt an der Saale (1)
- Klinik für Handchirurgie Bad Neustadt, Rhön-Klinikum, Bad Neustadt a.d. Saale (1)
- Klinik für Handchirurgie Rhön-Klinikum Campus Bad Neustadt (1)
- Klinik für Handchirurgie des Rhön-Klinikums Bad Neustadt an der Saale (1)
- Klinik für Handchirurgie, Rhön Klinikum Campus Bad Neustadt (1)
- Klinik für Kardiologie und Angiologie der Medizinischen Hochschule Hannover (1)
- Klinik für Kinder- und Jugendmedizin, Caritas-Krankenhaus Bad Mergentheim (1)
- Klinik für Kinder- und Jugendpsychiatrie, Psychosomatik und Psychotherapie des Leopoldina Krankenhaus Schweinfurt (1)
- Klinik für Psychiatrie und Psychotherapie, Universität Würzburg (1)
- Klinik für Transfusionsmedizin (1)
- Klinik für Tropenmedizin am Klinikum Würzburg Mitte gGmbH (1)
- Klinik und Poliklinik für Anästhesiologie, Intensivmedizin, Notfallmedizin und Schmerztherapie des Universitätsklinikums Würzburg (1)
- Klinikum Aschaffenburg-Alzenau (1)
- Klinikum Fulda gAG (1)
- Klinikum Main-Spessart Lohr (1)
- Klinikum Würzburg Mitte (Akademisches Lehrkrankenhaus der Uni Würzburg) (1)
- Klinische Mikrobiologie am Universitätsklinikum Erlangen (1)
- Kreisarchäologie Straubing-Bogen (1)
- König Ludwig Haus Würzburg (1)
- König Ludwig Haus, Würzburg (1)
- König-Ludwig Haus (1)
- König-Ludwig-Haus, Orthopedic Clinic, Würzburg (1)
- LIDYL, CEA, CNRS, Université Paris-Saclay, CEA Saclay 91191 Gif-sur-Yvette France (1)
- LMU München (1)
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The present review examines retrospective analyses of training intensity distribution (TID), i.e., the proportion of training at moderate (Zone 1, Z1), heavy (Z2) and severe (Z3) intensity by elite-to-world-class endurance athletes during different phases of the season. In addition, we discuss potential implications of our findings for research in this field, as well as for training by these athletes. Altogether, we included 175 TIDs, of which 120 quantified exercise intensity on the basis of heart rate and measured time-in-zone or employed variations of the session goal approach, with demarcation of zones of exercise intensity based on physiological parameters. Notably, 49% of the TIDs were single-case studies, predominantly concerning cross-country skiing and/or the biathlon. Eighty-nine TIDs were pyramidal (Z1 > Z2 > Z3), 65 polarized (Z1 > Z3 > Z2) and 8 “threshold” (Z2 > Z1 = Z3). However, these relative numbers varied between sports and the particular phases of the season. In 91% (n = 160) of the TIDs >60% of the endurance exercise was of low intensity. Regardless of the approach to quantification or phase of the season, cyclists and swimmers were found to perform a lower proportion of exercise in Z1 (<72%) and higher proportion in Z2 (>16%) than athletes involved in the triathlon, speed skating, rowing, running, cross-country skiing or biathlon (>80% in Z1 and <12% in Z2 in all these cases). For most of the athletes their proportion of heavy-to-severe exercise was higher during the period of competition than during the preparatory phase, although with considerable variability between sports. In conclusion, the existing literature in this area does not allow general conclusions to be drawn. The methods utilized for quantification vary widely and, moreover, contextual information concerning the mode of exercise, environmental conditions, and biomechanical aspects of the exercise is often lacking. Therefore, we recommend a more comprehensive approach in connection with future investigations on the TIDs of athletes involved in different endurance sports.
Here, we performed a non-systematic analysis of the strength, weaknesses, opportunities, and threats (SWOT) associated with the application of artificial intelligence to sports research, coaching and optimization of athletic performance. The strength of AI with regards to applied sports research, coaching and athletic performance involve the automation of time-consuming tasks, processing and analysis of large amounts of data, and recognition of complex patterns and relationships. However, it is also essential to be aware of the weaknesses associated with the integration of AI into this field. For instance, it is imperative that the data employed to train the AI system be both diverse and complete, in addition to as unbiased as possible with respect to factors such as the gender, level of performance, and experience of an athlete. Other challenges include e.g., limited adaptability to novel situations and the cost and other resources required. Opportunities include the possibility to monitor athletes both long-term and in real-time, the potential discovery of novel indicators of performance, and prediction of risk for future injury. Leveraging these opportunities can transform athletic development and the practice of sports science in general. Threats include over-dependence on technology, less involvement of human expertise, risks with respect to data privacy, breaching of the integrity and manipulation of data, and resistance to adopting such new technology. Understanding and addressing these SWOT factors is essential for maximizing the benefits of AI while mitigating its risks, thereby paving the way for its successful integration into sport science research, coaching, and optimization of athletic performance.
Universal prevention for non-suicidal self-injury in adolescents is scarce - A systematic review
(2023)
Non-suicidal self-injury (NSSI) during adolescence is a high-risk marker for the development and persistence of mental health problems and has been recognized as a significant public health problem. Whereas targeted prevention has indeed shown to be effective in reducing NSSI and improve mental health problems, access to such programs is limited. By face validity, universal prevention of NSSI seems an ideal starting point for a stepped-care model to circumvent a lack of resources in the medical care system. However, it is yet unclear how effective such approaches are. Here, we provide a summary of existing work on universal prevention of NSSI in adolescents younger than 21 years based on a systematic literature search. We found that only seven studies are available. None of the programs evaluated was found to be effective in reducing the incidence or frequency of NSSI. After providing a comprehensive summary of the existing work, we evaluate the fact that existing work primarily focusses on selected/targeted prevention and on psychoeducational methods. We derive implications for future directions in the field of universal prevention of NSSI.
In Burkitt lymphoma (BL), a tumor of germinal center B cells, the pro-apoptotic properties of MYC are controlled by tonic B cell receptor (BCR) signals. Since BL cells do not exhibit constitutive NF-κB activity, we hypothesized that anti-apoptotic NFATc1 proteins provide a major transcriptional survival signal in BL. Here we show that post-transcriptional mechanisms are responsible for the calcineurin (CN) independent constitutive nuclear over-expression of NFATc1 in BL and Eµ-MYC – induced B cell lymphomas (BCL). Conditional inactivation of the Nfatc1 gene in B cells of Eµ-MYC mice leads to apoptosis of BCL cells in vivo and ex vivo. Inhibition of BCR/SYK/BTK/PI3K signals in BL cells results in cytosolic re-location of NFATc1 and apoptosis. Therefore, NFATc1 activity is an integrated part of tonic BCR signaling and an alternative target for therapeutic intervention in BL.
Despite fine tuning voluntary movement as the most prominently studied function of the cerebellum, early human studies suggested cerebellar involvement emotion regulation. Since, the cerebellum has been associated with various mood and anxiety-related conditions. Research in animals provided evidence for cerebellar contributions to fear memory formation and extinction. Fear and anxiety can broadly be referred to as defensive states triggered by threat and characterized by multimodal adaptations such as behavioral and cardiac responses integrated into an intricately orchestrated defense reaction. This is mediated by an evolutionary conserved, highly interconnected network of defense-related structures with functional connections to the cerebellum. Projections from the deep cerebellar nucleus interpositus to the central amygdala interfere with retention of fear memory. Several studies uncovered tight functional connections between cerebellar deep nuclei and pyramis and the midbrain periaqueductal grey. Specifically, the fastigial nucleus sends direct projections to the ventrolateral PAG to mediate fear-evoked innate and learned freezing behavior. The cerebellum also regulates cardiovascular responses such as blood pressure and heart rate-effects dependent on connections with medullary cardiac regulatory structures. Because of the integrated, multimodal nature of defensive states, their adaptive regulation has to be highly dynamic to enable responding to a moving threatening stimulus. In this, predicting threat occurrence are crucial functions of calculating adequate responses. Based on its role in prediction error generation, its connectivity to limbic regions, and previous results on a role in fear learning, this review presents the cerebellum as a regulator of integrated cardio-behavioral defensive states.
Glycine receptor (GlyR) autoantibodies are associated with stiff-person syndrome and the life-threatening progressive encephalomyelitis with rigidity and myoclonus in children and adults. Patient histories show variability in symptoms and responses to therapeutic treatments. A better understanding of the autoantibody pathology is required to develop improved therapeutic strategies. So far, the underlying molecular pathomechanisms include enhanced receptor internalization and direct receptor blocking altering GlyR function. A common epitope of autoantibodies against the GlyRα1 has been previously defined to residues 1A-33G at the N-terminus of the mature GlyR extracellular domain. However, if other autoantibody binding sites exist or additional GlyR residues are involved in autoantibody binding is yet unknown. The present study investigates the importance of receptor glycosylation for binding of anti-GlyR autoantibodies. The glycine receptor α1 harbors only one glycosylation site at the amino acid residue asparagine 38 localized in close vicinity to the identified common autoantibody epitope. First, non-glycosylated GlyRs were characterized using protein biochemical approaches as well as electrophysiological recordings and molecular modeling. Molecular modeling of non-glycosylated GlyRα1 did not show major structural alterations. Moreover, non-glycosylation of the GlyRα1N38Q did not prevent the receptor from surface expression. At the functional level, the non-glycosylated GlyR demonstrated reduced glycine potency, but patient GlyR autoantibodies still bound to the surface-expressed non-glycosylated receptor protein in living cells. Efficient adsorption of GlyR autoantibodies from patient samples was possible by binding to native glycosylated and non-glycosylated GlyRα1 expressed in living not fixed transfected HEK293 cells. Binding of patient-derived GlyR autoantibodies to the non-glycosylated GlyRα1 offered the possibility to use purified non-glycosylated GlyR extracellular domain constructs coated on ELISA plates and use them as a fast screening readout for the presence of GlyR autoantibodies in patient serum samples. Following successful adsorption of patient autoantibodies by GlyR ECDs, binding to primary motoneurons and transfected cells was absent. Our results indicate that the glycine receptor autoantibody binding is independent of the receptor’s glycosylation state. Purified non-glycosylated receptor domains harbouring the autoantibody epitope thus provide, an additional reliable experimental tool besides binding to native receptors in cell-based assays for detection of autoantibody presence in patient sera.
The reversible condensation of catechols and boronic acids to boronate esters is a paradigm reaction in dynamic covalent chemistry. However, facile backward hydrolysis is detrimental for stability and has so far prevented applications for boronate-based materials. Here, we introduce cubic boronate ester cages 6 derived from hexahydroxy tribenzotriquinacenes and phenylene diboronic acids with ortho-t-butyl substituents. Due to steric shielding, dynamic exchange at the Lewis acidic boron sites is feasible only under acid or base catalysis but fully prevented at neutral conditions. For the first time, boronate ester cages 6 tolerate substantial amounts of water or alcohols both in solution and solid state. The unprecedented applicability of these materials under ambient and aqueous conditions is showcased by efficient encapsulation and on-demand release of β-carotene dyes and heterogeneous water oxidation catalysis after the encapsulation of ruthenium catalysts.
Conspectus
Nature has established a sustainable way to maintain aerobic life on earth by inventing one of the most sophisticated biological processes, namely, natural photosynthesis, which delivers us with organic matter and molecular oxygen derived from the two abundant resources sunlight and water. The thermodynamically demanding photosynthetic water splitting is catalyzed by the oxygen-evolving complex in photosystem II (OEC-PSII), which comprises a distorted tetramanganese–calcium cluster (CaMn\(_4\)O\(_5\)) as catalytic core. As an ubiquitous concept for fine-tuning and regulating the reactivity of the active site of metalloenzymes, the surrounding protein domain creates a sophisticated environment that promotes substrate preorganization through secondary, noncovalent interactions such as hydrogen bonding or electrostatic interactions. Based on the high-resolution X-ray structure of PSII, several water channels were identified near the active site, which are filled with extensive hydrogen-bonding networks of preorganized water molecules, connecting the OEC with the protein surface. As an integral part of the outer coordination sphere of natural metalloenzymes, these channels control the substrate and product delivery, carefully regulate the proton flow by promoting pivotal proton-coupled electron transfer processes, and simultaneously stabilize short-lived oxidized intermediates, thus highlighting the importance of an ordered water network for the remarkable efficiency of the natural OEC.
Transferring this concept from nature to the engineering of artificial metal catalysts for fuel production has fostered the fascinating field of metallosupramolecular chemistry by generating defined cavities that conceptually mimic enzymatic pockets. However, the application of supramolecular approaches to generate artificial water oxidation catalysts remained scarce prior to our initial reports, since such molecular design strategies for efficient activation of substrate water molecules in confined nanoenvironments were lacking. In this Account, we describe our research efforts on combining the state-of-the art Ru(bda) catalytic framework with structurally programmed ditopic ligands to guide the water oxidation process in defined metallosupramolecular assemblies in spatial proximity. We will elucidate the governing factors that control the quality of hydrogen-bonding water networks in multinuclear cavities of varying sizes and geometries to obtain high-performance, state-of-the-art water oxidation catalysts. Pushing the boundaries of artificial catalyst design, embedding a single catalytic Ru center into a well-defined molecular pocket enabled sophisticated water preorganization in front of the active site through an encoded basic recognition site, resulting in high catalytic rates comparable to those of the natural counterpart OEC-PSII.
To fully explore their potential for solar fuel devices, the suitability of our metallosupramolecular assemblies was demonstrated under (electro)chemical and photocatalytic water oxidation conditions. In addition, testing the limits of structural diversity allowed the fabrication of self-assembled linear coordination oligomers as novel photocatalytic materials and long-range ordered covalent organic framework (COF) materials as recyclable and long-term stable solid-state materials for future applications.
Wie weit kann ein christlicher Denker Avicenna folgen, wenn er dessen Ontologie zur Erklärung des Verhältnisses von Gott und Welt heranzieht? Dieser zentralen Frage der Avicenna-Rezeption widmet sich die vorliegende Arbeit.
Avicenna (Ibn Sīnā, 980–1037) entwickelt in der Metaphysik (al-Ilāhiyyāt) – dem vierten Teil seiner philosophischen Summe Buch der Heilung (Kitāb al-Šifāʾ) – den Grundgedanken seiner Ontologie: die Distinktion von Sein und Wesen, die zu einem seiner bekanntesten und einflussreichsten Lehrstücke wurde. Nach der lateinischen Übersetzung von Avicennas Metaphysik im zwölften Jahrhundert fand die darin entworfene Ontologie rasche Verbreitung unter den lateinisch-christlichen Gelehrten. Für deren monotheistische Weltanschauung war diese Lehre insofern attraktiv, als sich aus der Sein-Wesen-Distinktion die wichtigsten ontologischen Aspekte der Beziehung von Gott und Welt rein rational ableiten lassen. Vor diesem Hintergrund stellt sich die genannte Frage, wie weit ein christlicher Denker mit Avicenna gehen kann, wenn er dessen Ontologie heranzieht, um das Verhältnis von Gott und Welt zu erklären. Diese Frage untersucht die Autorin für die drei Gelehrten Dominicus Gundisalvi († nach 1190), Wilhelm von Auvergne († 1249) und Heinrich von Gent († 1293). Die Verschränkung von Ontologie, Theologie und Kosmogonie gibt der Autorin die Möglichkeit, für diese drei Bereiche jeweils herauszuarbeiten, an welchen Stellen und aus welchen Motiven Modifikationen an der avicennischen Theorie vorgenommen wurden, um sie eigenen Zwecken oder neuen Kontexten wie der Trinitätstheologie anzupassen. Zugleich zeigt sie auf, an welchen Punkten mit Avicennas Theorie gänzlich gebrochen wurde. Was bedeuten diese Änderungen und Brüche inhaltlich? Und insbesondere: Wie werden sie rational gerechtfertigt?