TY - JOUR A1 - Letunic, Ivica A1 - Khedkar, Supriya A1 - Bork, Peer T1 - SMART: recent updates, new developments and status in 2020 JF - Nucleic Acids Research N2 - SMART (Simple Modular Architecture Research Tool) is a web resource (https://smart.embl.de) for the identification and annotation of protein domains and the analysis of protein domain architectures. SMART version 9 contains manually curatedmodels formore than 1300 protein domains, with a topical set of 68 new models added since our last update article (1). All the new models are for diverse recombinase families and subfamilies and as a set they provide a comprehensive overview of mobile element recombinases namely transposase, integrase, relaxase, resolvase, cas1 casposase and Xer like cellular recombinase. Further updates include the synchronization of the underlying protein databases with UniProt (2), Ensembl (3) and STRING (4), greatly increasing the total number of annotated domains and other protein features available in architecture analysis mode. Furthermore, SMART's vector-based protein display engine has been extended and updated to use the latest web technologies and the domain architecture analysis components have been optimized to handle the increased number of protein features available. KW - SMART KW - SMART version 9 KW - protein domains KW - protein domain architectures Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-363816 VL - 49 IS - D1 ER - TY - THES A1 - Hartmann, Oliver T1 - Development of somatic modified mouse models of Non-Small cell lung cancer T1 - Entwicklung von somatisch veränderten Mausmodellen für nichtkleinzelligen Lungenkrebs N2 - In 2020, cancer was the leading cause of death worldwide, accounting for nearly 10 million deaths. Lung cancer was the most common cancer, with 2.21 million cases per year in both sexes. This non-homogeneous disease is further subdivided into small cell lung cancer (SCLC, 15%) and non-small cell lung cancer (NSCLC, 85%). By 2023, the American Cancer Society estimates that NSCLC will account for 13% of all new cancer cases and 21% of all estimated cancer deaths. In recent years, the treatment of patients with NSCLC has improved with the development of new therapeutic interventions and the advent of targeted and personalised therapies. However, these advances have only marginally improved the five-year survival rate, which remains alarmingly low for patients with NSCLC. This observation highlights the importance of having more appropriate experimental and preclinical models to recapitulate, identify and test novel susceptibilities in NSCLC. In recent years, the Trp53fl/fl KRaslsl-G12D/wt mouse model developed by Tuveson, Jacks and Berns has been the main in vivo model used to study NSCLC. This model mimics ADC and SCC to a certain extent. However, it is limited in its ability to reflect the genetic complexity of NSCLC. In this work, we use CRISPR/Cas9 genome editing with targeted mutagenesis and gene deletions to recapitulate the conditional model. By comparing the Trp53fl/fl KRaslsl- G12D/wt with the CRISPR-mediated Trp53mut KRasG12D, we demonstrated that both showed no differences in histopathological features, morphology, and marker expression. Furthermore, next-generation sequencing revealed a very high similarity in their transcriptional profile. Adeno-associated virus-mediated tumour induction and the modular design of the viral vector allow us to introduce additional mutations in a timely manner. CRISPR-mediated mutation of commonly mutated tumour suppressors in NSCLC reliably recapitulated the phenotypes described in patients in the animal model. Lastly, the dual viral approach could induce the formation of lung tumours not only in constitutive Cas9 expressing animals, but also in wildtype animals. Thus, the implementation of CRISPR genome editing can rapidly advance the repertoire of in vivo models for NSCLC research. Furthermore, it can reduce the necessity of extensive breeding. N2 - Krebs war mit fast 10 Millionen Todesfällen weltweit die häufigste Todesursache in 2020. Mit 2,21 Millionen Fällen pro Jahr in beiden Geschlechtern kombiniert war Lungenkrebs die häufigste Unterart. Auszeichnend für dieses Krankheit ist die hohe Komplexität und Heterogenität. Daher wird diese weiter in kleinzelligen Lungenkrebs (SCLC, 15 %) und nicht-kleinzelligen Lungenkrebs (NSCLC, 85 %) unterteilt. Die American Cancer Society schätzt, dass bis 2023 13 % aller neuen Krebsfälle und 21 % aller geschätzten Krebstodesfälle auf das nicht-kleinzellige Lungenkarzinom entfallen werden. In den letzten Jahren hat sich die Behandlung von Patienten mit nicht-kleinzelligem Lungenkarzinom durch die Entwicklung neuer therapeutischer Maßnahmen und das Anwenden personalisierter Therapien verbessert. Allerdings haben diese Fortschritte die Fünfjahresüberlebensrate nur geringfügig verbessert, die für Patienten mit NSCLC nach wie vor alarmierend niedrig ist. Diese macht deutlich, wie wichtig es ist, über geeignetere experimentelle und präklinische Modelle zu verfügen, um neue Therapieansätze beim NSCLC zu rekapitulieren, zu identifizieren und zu testen. In der letzten Dekade war das von Tuveson, Jacks und Berns entwickelte Trp53fl/fl KRaslsl-G12D/wt-Mausmodell das wichtigste In-vivo-Modell zur Untersuchung von NSCLC. Dieses kann grundlegend das Krankheitsbild von NSCLC wiederspiegeln. Es ist jedoch nur begrenzt in der Lage, die genetische Komplexität von NSCLC im vollen Umfang zu refelktieren. In dieser Arbeit verwenden wir CRISPR/Cas9 Genome Editing mit gezielter Mutagenese und Gendeletionen, um das konditionale Modell zu rekapitulieren. Durch den Vergleich des Trp53fl/fl KRaslsl-G12D/wt mit dem CRISPR-vermittelten Trp53mut KRasG12D konnten wir zeigen, dass beide keine Unterschiede in Bezug auf histopathologische Merkmale, Morphologie und Markerexpression aufweisen. Darüber hinaus ergab die Analyse mittels Next Generation Sequencing 8Hochdruchsatz.Sequenzierung) eine sehr große Ähnlichkeit in ihrem Transkriptionsprofil. Die Adeno-assoziierte Virus-vermittelte Tumorinduktion und der modulare Aufbau des viralen Vektors ermöglichen es uns, zusätzliche Mutationen zeitnah einzuführen. Die CRISPR-vermittelte Mutation von häufig mutierten Tumorsuppressoren bei NSCLC rekapitulierte zuverlässig die bei Patienten beschriebenen Phänotypen im Tiermodell. Schließlich konnte der duale virale Ansatz die Bildung von Lungentumoren nicht nur in konstitutiv Cas9 exprimierenden Tieren, sondern auch in Wildtyp-Tieren induzieren. Somit kann die Anwendung von CRISPR-Genome Editing das Repertoire an In-vivo- Modellen für die NSCLC-Forschung rasch erweitern. Darüber hinaus kann es die Notwendigkeit umfangreicher Züchtungen verringern. KW - CRISPR/Cas-Methode KW - in vivo KW - Lung Cancer KW - CRISPR/Cas9 KW - in vivo genome editing KW - Immunohistochemistry KW - Nicht-kleinzelliges Bronchialkarzinom KW - NSCLC KW - Mouse Model KW - CRISPR Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-363401 ER - TY - JOUR A1 - Loos, Jacqueline A1 - Krauss, Jochen A1 - Lyons, Ashley A1 - Föst, Stephanie A1 - Ohlendorf, Constanze A1 - Racky, Severin A1 - Röder, Marina A1 - Hudel, Lennart A1 - Herfert, Volker A1 - Tscharntke, Teja T1 - Local and landscape responses of biodiversity in calcareous grasslands JF - Biodiversity and Conservation N2 - Across Europe, calcareous grasslands become increasingly fragmented and their quality deteriorates through abandonment and land use intensification, both affecting biodiversity. Here, we investigated local and landscape effects on diversity patterns of several taxonomic groups in a landscape of highly fragmented calcareous grassland remnants. We surveyed 31 grassland fragments near Göttingen, Germany, in spring and summer 2017 for vascular plants, butterflies and birds, with sampling effort adapted to fragment area. Through regression modelling, we tested relationships between species richness and fragment size (from 314 to 51,395 m\(^2\)), successional stage, habitat connectivity and the per cent cover of arable land in the landscape at several radii. We detected 283 plant species, 53 butterfly species and 70 bird species. Of these, 59 plant species, 19 butterfly species and 9 bird species were grassland specialists. Larger fragments supported twice the species richness of plants than small ones, and hosted more species of butterflies, but not of birds. Larger grassland fragments contained more grassland specialist plants, but not butterfly or bird specialists. Increasing amounts of arable land in the landscape from 20 to 90% was related to the loss of a third of species of plants, and less so, of butterflies, but not of birds. Per cent cover of arable land negatively correlated to richness of grassland specialist plants and butterflies, but positively to grassland specialist birds. We found no effect by successional stages and habitat connectivity. Our multi-taxa approach highlights the need for conservation management at the local scale, complemented by measures at the landscape scale. KW - abandonment KW - birds KW - butterflies KW - land use intensification KW - nature conservation KW - vascular plants Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-308595 SN - 0960-3115 SN - 1572-9710 VL - 30 IS - 8-9 ER - TY - JOUR A1 - Eckert, Johanna A1 - Bohn, Manuel A1 - Spaethe, Johannes T1 - Does quantity matter to a stingless bee? JF - Animal Cognition N2 - Quantitative information is omnipresent in the world and a wide range of species has been shown to use quantities to optimize their decisions. While most studies have focused on vertebrates, a growing body of research demonstrates that also insects such as honeybees possess basic quantitative abilities that might aid them in finding profitable flower patches. However, it remains unclear if for insects, quantity is a salient feature relative to other stimulus dimensions, or if it is only used as a “last resort” strategy in case other stimulus dimensions are inconclusive. Here, we tested the stingless bee Trigona fuscipennis, a species representative of a vastly understudied group of tropical pollinators, in a quantity discrimination task. In four experiments, we trained wild, free-flying bees on stimuli that depicted either one or four elements. Subsequently, bees were confronted with a choice between stimuli that matched the training stimulus either in terms of quantity or another stimulus dimension. We found that bees were able to discriminate between the two quantities, but performance differed depending on which quantity was rewarded. Furthermore, quantity was more salient than was shape. However, quantity did not measurably influence the bees' decisions when contrasted with color or surface area. Our results demonstrate that just as honeybees, small-brained stingless bees also possess basic quantitative abilities. Moreover, invertebrate pollinators seem to utilize quantity not only as "last resort" but as a salient stimulus dimension. Our study contributes to the growing body of knowledge on quantitative cognition in invertebrate species and adds to our understanding of the evolution of numerical cognition. KW - numerical cognition KW - insects KW - Trigona fuscipennis KW - associative learning KW - quantity discrimination KW - behavioral experiments Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-307696 SN - 1435-9448 SN - 1435-9456 VL - 25 IS - 3 ER - TY - JOUR A1 - Dunce, James M. A1 - Milburn, Amy E. A1 - Gurusaran, Manickam A1 - da Cruz, Irene A1 - Sen, Lee T. A1 - Benavente, Ricardo A1 - Davies, Owen R. T1 - Structural basis of meiotic telomere attachment to the nuclear envelope by MAJIN-TERB2-TERB1 JF - Nature Communications N2 - Meiotic chromosomes undergo rapid prophase movements, which are thought to facilitate the formation of inter-homologue recombination intermediates that underlie synapsis, crossing over and segregation. The meiotic telomere complex (MAJIN, TERB1, TERB2) tethers telomere ends to the nuclear envelope and transmits cytoskeletal forces via the LINC complex to drive these rapid movements. Here, we report the molecular architecture of the meiotic telomere complex through the crystal structure of MAJIN-TERB2, together with light and X-ray scattering studies of wider complexes. The MAJIN-TERB2 2:2 hetero-tetramer binds strongly to DNA and is tethered through long flexible linkers to the inner nuclear membrane and two TRF1-binding 1:1 TERB2-TERB1 complexes. Our complementary structured illumination microscopy studies and biochemical findings reveal a telomere attachment mechanism in which MAJIN-TERB2-TERB1 recruits telomere-bound TRF1, which is then displaced during pachytene, allowing MAJIN-TERB2-TERB1 to bind telomeric DNA and form a mature attachment plate. KW - DNA KW - meiosis KW - proteins KW - super-resolution microscopy KW - X-ray crystallography Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-226416 VL - 9 ER - TY - JOUR A1 - Dörk, Thilo A1 - Peterlongo, Peter A1 - Mannermaa, Arto A1 - Bolla, Manjeet K. A1 - Wang, Qin A1 - Dennis, Joe A1 - Ahearn, Thomas A1 - Andrulis, Irene L. A1 - Anton-Culver, Hoda A1 - Arndt, Volker A1 - Aronson, Kristan J. A1 - Augustinsson, Annelie A1 - Beane Freeman, Laura E. A1 - Beckmann, Matthias W. A1 - Beeghly-Fadiel, Alicia A1 - Behrens, Sabine A1 - Bermisheva, Marina A1 - Blomqvist, Carl A1 - Bogdanova, Natalia V. A1 - Bojesen, Stig E. A1 - Brauch, Hiltrud A1 - Brenner, Hermann A1 - Burwinkel, Barbara A1 - Canzian, Federico A1 - Chan, Tsun L. A1 - Chang-Claude, Jenny A1 - Chanock, Stephen J. A1 - Choi, Ji-Yeob A1 - Christiansen, Hans A1 - Clarke, Christine L. A1 - Couch, Fergus J. A1 - Czene, Kamila A1 - Daly, Mary B. A1 - dos-Santos-Silva, Isabel A1 - Dwek, Miriam A1 - Eccles, Diana M. A1 - Ekici, Arif B. A1 - Eriksson, Mikael A1 - Evans, D. Gareth A1 - Fasching, Peter A. A1 - Figueroa, Jonine A1 - Flyger, Henrik A1 - Fritschi, Lin A1 - Gabrielson, Marike A1 - Gago-Dominguez, Manuela A1 - Gao, Chi A1 - Gapstur, Susan M. A1 - García-Closas, Montserrat A1 - García-Sáenz, José A. A1 - Gaudet, Mia M. A1 - Giles, Graham G. A1 - Goldberg, Mark S. A1 - Goldgar, David E. A1 - Guenél, Pascal A1 - Haeberle, Lothar A1 - Haimann, Christopher A. A1 - Håkansson, Niclas A1 - Hall, Per A1 - Hamann, Ute A1 - Hartman, Mikael A1 - Hauke, Jan A1 - Hein, Alexander A1 - Hillemanns, Peter A1 - Hogervorst, Frans B. L. A1 - Hooning, Maartje J. A1 - Hopper, John L. A1 - Howell, Tony A1 - Huo, Dezheng A1 - Ito, Hidemi A1 - Iwasaki, Motoki A1 - Jakubowska, Anna A1 - Janni, Wolfgang A1 - John, Esther M. A1 - Jung, Audrey A1 - Kaaks, Rudolf A1 - Kang, Daehee A1 - Kapoor, Pooja Middha A1 - Khusnutdinova, Elza A1 - Kim, Sung-Won A1 - Kitahara, Cari M. A1 - Koutros, Stella A1 - Kraft, Peter A1 - Kristensen, Vessela N. A1 - Kwong, Ava A1 - Lambrechts, Diether A1 - Le Marchand, Loic A1 - Li, Jingmei A1 - Lindström, Sara A1 - Linet, Martha A1 - Lo, Wing-Yee A1 - Long, Jirong A1 - Lophatananon, Artitaya A1 - Lubiński, Jan A1 - Manoochehri, Mehdi A1 - Manoukian, Siranoush A1 - Margolin, Sara A1 - Martinez, Elena A1 - Matsuo, Keitaro A1 - Mavroudis, Dimitris A1 - Meindl, Alfons A1 - Menon, Usha A1 - Milne, Roger L. A1 - Mohd Taib, Nur Aishah A1 - Muir, Kenneth A1 - Mulligan, Anna Marie A1 - Neuhausen, Susan L. A1 - Nevanlinna, Heli A1 - Neven, Patrick A1 - Newman, William G. A1 - Offit, Kenneth A1 - Olopade, Olufunmilayo I. A1 - Olshan, Andrew F. A1 - Olson, Janet E. A1 - Olsson, Håkan A1 - Park, Sue K. A1 - Park-Simon, Tjoung-Won A1 - Peto, Julian A1 - Plaseska-Karanfilska, Dijana A1 - Pohl-Rescigno, Esther A1 - Presneau, Nadege A1 - Rack, Brigitte A1 - Radice, Paolo A1 - Rashid, Muhammad U. A1 - Rennert, Gad A1 - Rennert, Hedy S. A1 - Romero, Atocha A1 - Ruebner, Matthias A1 - Saloustros, Emmanouil A1 - Schmidt, Marjanka K. A1 - Schmutzler, Rita K. A1 - Schneider, Michael O. A1 - Schoemaker, Minouk J. A1 - Scott, Christopher A1 - Shen, Chen-Yang A1 - Shu, Xiao-Ou A1 - Simard, Jaques A1 - Slager, Susan A1 - Smichkoska, Snezhana A1 - Southey, Melissa C. A1 - Spinelli, John J. A1 - Stone, Jennifer A1 - Surowy, Harald A1 - Swerdlow, Anthony J. A1 - Tamimi, Rulla M. A1 - Tapper, William J. A1 - Teo, Soo H. A1 - Terry, Mary Beth A1 - Toland, Amanda E. A1 - Tollenaar, Rob A. E. M. A1 - Torres, Diana A1 - Torres-Mejía, Gabriela A1 - Troester, Melissa A. A1 - Truong, Thérèse A1 - Tsugane, Shoichiro A1 - Untch, Michael A1 - Vachon, Celine M. A1 - van den Ouweland, Ans M. W. A1 - van Veen, Elke M. A1 - Vijai, Joseph A1 - Wendt, Camilla A1 - Wolk, Alicja A1 - Yu, Jyh-Cherng A1 - Zheng, Wei A1 - Ziogas, Argyrios A1 - Ziv, Elad A1 - Dunnig, Alison A1 - Pharaoh, Paul D. P. A1 - Schindler, Detlev A1 - Devilee, Peter A1 - Easton, Douglas F. T1 - Two truncating variants in FANCC and breast cancer risk JF - Scientific Reports N2 - Fanconi anemia (FA) is a genetically heterogeneous disorder with 22 disease-causing genes reported to date. In some FA genes, monoallelic mutations have been found to be associated with breast cancer risk, while the risk associations of others remain unknown. The gene for FA type C, FANCC, has been proposed as a breast cancer susceptibility gene based on epidemiological and sequencing studies. We used the Oncoarray project to genotype two truncating FANCC variants (p.R185X and p.R548X) in 64,760 breast cancer cases and 49,793 controls of European descent. FANCC mutations were observed in 25 cases (14 with p.R185X, 11 with p.R548X) and 26 controls (18 with p.R185X, 8 with p.R548X). There was no evidence of an association with the risk of breast cancer, neither overall (odds ratio 0.77, 95%CI 0.44–1.33, p = 0.4) nor by histology, hormone receptor status, age or family history. We conclude that the breast cancer risk association of these two FANCC variants, if any, is much smaller than for BRCA1, BRCA2 or PALB2 mutations. If this applies to all truncating variants in FANCC it would suggest there are differences between FA genes in their roles on breast cancer risk and demonstrates the merit of large consortia for clarifying risk associations of rare variants. KW - oncology KW - risk factors Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-222838 VL - 9 ER - TY - JOUR A1 - Dammert, Marcel A. A1 - Brägelmann, Johannes A1 - Olsen, Rachelle R. A1 - Böhm, Stefanie A1 - Monhasery, Niloufar A1 - Whitney, Christopher P. A1 - Chalishazar, Milind D. A1 - Tumbrink, Hannah L. A1 - Guthrie, Matthew R. A1 - Klein, Sebastian A1 - Ireland, Abbie S. A1 - Ryan, Jeremy A1 - Schmitt, Anna A1 - Marx, Annika A1 - Ozretić, Luka A1 - Castiglione, Roberta A1 - Lorenz, Carina A1 - Jachimowicz, Ron D. A1 - Wolf, Elmar A1 - Thomas, Roman K. A1 - Poirier, John T. A1 - Büttner, Reinhard A1 - Sen, Triparna A1 - Byers, Lauren A. A1 - Reinhardt, H. Christian A1 - Letai, Anthony A1 - Oliver, Trudy G. A1 - Sos, Martin L. T1 - MYC paralog-dependent apoptotic priming orchestrates a spectrum of vulnerabilities in small cell lung cancer JF - Nature Communications N2 - MYC paralogs are frequently activated in small cell lung cancer (SCLC) but represent poor drug targets. Thus, a detailed mapping of MYC-paralog-specific vulnerabilities may help to develop effective therapies for SCLC patients. Using a unique cellular CRISPR activation model, we uncover that, in contrast to MYCN and MYCL, MYC represses BCL2 transcription via interaction with MIZ1 and DNMT3a. The resulting lack of BCL2 expression promotes sensitivity to cell cycle control inhibition and dependency on MCL1. Furthermore, MYC activation leads to heightened apoptotic priming, intrinsic genotoxic stress and susceptibility to DNA damage checkpoint inhibitors. Finally, combined AURK and CHK1 inhibition substantially prolongs the survival of mice bearing MYC-driven SCLC beyond that of combination chemotherapy. These analyses uncover MYC-paralog-specific regulation of the apoptotic machinery with implications for genotype-based selection of targeted therapeutics in SCLC patients. KW - genetic engineering KW - oncogenes KW - small-cell lung cancer KW - targeted therapies Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-223569 VL - 10 ER - TY - JOUR A1 - Steuer Costa, Wagner A1 - Van der Auwera, Petrus A1 - Glock, Caspar A1 - Liewald, Jana F. A1 - Bach, Maximilian A1 - Schüler, Christina A1 - Wabnig, Sebastian A1 - Oranth, Alexandra A1 - Masurat, Florentin A1 - Bringmann, Henrik A1 - Schoofs, Liliane A1 - Stelzer, Ernst H. K. A1 - Fischer, Sabine C. A1 - Gottschalk, Alexander T1 - A GABAergic and peptidergic sleep neuron as a locomotion stop neuron with compartmentalized Ca2+ dynamics JF - Nature Communications N2 - Animals must slow or halt locomotion to integrate sensory inputs or to change direction. In Caenorhabditis elegans, the GABAergic and peptidergic neuron RIS mediates developmentally timed quiescence. Here, we show RIS functions additionally as a locomotion stop neuron. RIS optogenetic stimulation caused acute and persistent inhibition of locomotion and pharyngeal pumping, phenotypes requiring FLP-11 neuropeptides and GABA. RIS photoactivation allows the animal to maintain its body posture by sustaining muscle tone, yet inactivating motor neuron oscillatory activity. During locomotion, RIS axonal Ca2+ signals revealed functional compartmentalization: Activity in the nerve ring process correlated with locomotion stop, while activity in a branch correlated with induced reversals. GABA was required to induce, and FLP-11 neuropeptides were required to sustain locomotion stop. RIS attenuates neuronal activity and inhibits movement, possibly enabling sensory integration and decision making, and exemplifies dual use of one cell across development in a compact nervous system. KW - Cellular neuroscience KW - Neural circuits Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-223273 VL - 10 ER - TY - INPR A1 - Hennig, Thomas A1 - Prusty, Archana B. A1 - Kaufer, Benedikt A1 - Whisnant, Adam W. A1 - Lodha, Manivel A1 - Enders, Antje A1 - Thomas, Julius A1 - Kasimir, Francesca A1 - Grothey, Arnhild A1 - Herb, Stefanie A1 - Jürges, Christopher A1 - Meister, Gunter A1 - Erhard, Florian A1 - Dölken, Lars A1 - Prusty, Bhupesh K. T1 - Selective inhibition of miRNA 1 processing by a herpesvirus encoded miRNA N2 - Herpesviruses have mastered host cell modulation and immune evasion to augment productive infection, life-long latency and reactivation thereof 1,2. A long appreciated, yet elusively defined relationship exists between the lytic-latent switch and viral non-coding RNAs 3,4. Here, we identify miRNA-mediated inhibition of miRNA processing as a thus far unknown cellular mechanism that human herpesvirus 6A (HHV-6A) exploits to disrupt mitochondrial architecture, evade intrinsic host defense and drive the lytic-latent switch. We demonstrate that virus-encoded miR-aU14 selectively inhibits the processing of multiple miR-30 family members by direct interaction with the respective pri-miRNA hairpin loops. Subsequent loss of miR-30 and activation of the miR-30/p53/Drp1 axis triggers a profound disruption of mitochondrial architecture. This impairs induction of type I interferons and is necessary for both productive infection and virus reactivation. Ectopic expression of miR-aU14 triggered virus reactivation from latency, identifying viral miR-aU14 as a readily drugable master regulator of the herpesvirus lytic-latent switch. Our results show that miRNA-mediated inhibition of miRNA processing represents a generalized cellular mechanism that can be exploited to selectively target individual members of miRNA families. We anticipate that targeting miR-aU14 provides exciting therapeutic options for preventing herpesvirus reactivations in HHV-6-associated disorders. KW - Herpesvirus KW - HHV-6A KW - miRNA processing KW - miR-30 KW - mitochondria KW - fusion and fission KW - type I interferon KW - latency KW - virus reactivation Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267862 ET - accepted version ER - TY - THES A1 - Gaballa, Abdallah Hatem Hassan Hosny Ahmed T1 - PAF1c drives MYC-mediated immune evasion in pancreatic ductal adenocarcinoma T1 - PAF1c treibt die MYC-vermittelte Immunevasion im duktalen Adenokarzinom der Bauchspeicheldrüse an N2 - The expression of the MYC proto-oncogene is elevated in a large proportion of patients with pancreatic ductal adenocarcinoma (PDAC). Previous findings in PDAC have shown that this increased MYC expression mediates immune evasion and promotes S-phase progression. How these functions are mediated and whether a downstream factor of MYC mediates these functions has remained elusive. Recent studies identifying the MYC interactome revealed a complex network of interaction partners, highlighting the need to identify the oncogenic pathway of MYC in an unbiased manner. In this work, we have shown that MYC ensures genomic stability during S-phase and prevents transcription-replication conflicts. Depletion of MYC and inhibition of ATR kinase showed a synergistic effect to induce DNA damage. A targeted siRNA screen targeting downstream factors of MYC revealed that PAF1c is required for DNA repair and S-phase progression. Recruitment of PAF1c to RNAPII was shown to be MYC dependent. PAF1c was shown to be largely dispensable for cell proliferation and regulation of MYC target genes. Depletion of CTR9, a subunit of PAF1c, caused strong tumor regression in a pancreatic ductal adenocarcinoma model, with long-term survival in a subset of mice. This effect was not due to induction of DNA damage, but to restoration of tumor immune surveillance. Depletion of PAF1c resulted in the release of RNAPII with transcription elongation factors, including SPT6, from the bodies of long genes, promoting full-length transcription of short genes. This resulted in the downregulation of long DNA repair genes and the concomitant upregulation of short genes, including MHC class I genes. These data demonstrate that a balance between long and short gene transcription is essential for tumor progression and that interference with PAF1c levels shifts this balance toward a tumor-suppressive transcriptional program. It also directly links MYC-mediated S-phase progression to immune evasion. Unlike MYC, PAF1c has a stable, known folded structure; therefore, the development of a small molecule targeting PAF1c may disrupt the immune evasive function of MYC while sparing its physiological functions in cellular growth. N2 - Die Expression des MYC-Proto-Onkogens ist bei einem großen Teil der Patienten mit duktalem Adenokarzinom der Bauchspeicheldrüse (PDAC) erhöht. Bisherige Erkenntnisse in der Erforschung des ankreaskarzinoms zeigen, dass die erhöhte MYCExpression die Umgehung des Immunsystems bewirkt und die Progression der S-Phase fördert. Wie diese Funktionen vermittelt werden und ob ein nachgeschalteter Faktor von MYC für diese Funktion verantwortlich ist, blieb jedoch bisher ungeklärt. Jüngste Studien zur Identifizierung des MYC-Interaktoms haben ein sehr komplexes Netzwerk an Interaktionspartnern von MYC aufgedeckt, was die Notwendigkeit unterstreicht, die onkogenen Eigenschaften von MYC und seinen Interaktionspartnern unvoreingenommen und genau zu untersuchen. In dieser Arbeit konnte gezeigt werden, dass MYC die genomische Stabilität während der S-Phase herstellt und Konflikte zwischen Transkription und Replikation verhindert. Die Depletion von MYC und die Hemmung der ATR-Kinase zeigten bei der Induktion von DNA Schäden eine synergistische Wirkung. Ein siRNA-Screen, der Gene beinhaltete, die MYC nachgeschaltet sind, ergab, dass PAF1c für die DNA-Reparatur und die S-PhasenProgression erforderlich ist. Es zeigte sich außerdem, dass die Rekrutierung von PAF1c an RNAPII von MYC abhängig ist. Für die Zellproliferation und die Regulierung von MYCZielgenen ist PAF1c jedoch weitgehend entbehrlich. Es konnte gezeigt werden, dass die Depletion von CTR9, einer Untereinheit von PAF1c, in einem murinen Modell des duktalen Adenokarzinoms der Bauchspeicheldrüse zu einer starken Tumorregression mit langfristigem Überleben einiger Mäuse führte. Diese Wirkung war nicht auf die Induktion von DNA-Schäden zurückzuführen, sondern auf die Wiederherstellung der Immunüberwachung des Tumors. Die Deletion von PAF1c führte zu einer Umverteilung von RNAPII und Trankriptionselongationsfaktoren wie SPT6, von langen Genen hin zu kurzen Genen. Dadurch wurden lange Gene wie zum Beispiel DNA Reparaturgene nicht vollständig transkribiert, kurze Gene wie MHC-Klasse-I-Gene hingegen schon. Diese Daten zeigen, dass ein Gleichgewicht zwischen der Transkription langer und kurzer Gene für die Tumorprogression wichtig ist und dass eine Verminderung der PAF1c-Konzentration dieses Gleichgewicht in Richtung eines tumorsuppressiven Transkriptionsprogramms verschiebt. Außerdem besteht ein direkter Zusammenhang zwischen der MYCvermittelten S-Phasen-Progression und der Umgehung des Immunsystems. Im Gegensatz zu MYC verfügt PAF1c über eine stabile und gut bekannte gefaltete Struktur. Daher könnte die Entwicklung eines kleinen Moleküls, das PAF1c hemmt, die Funktion von MYC zur Umgehung des Immunsystems stören und gleichzeitig seine physiologischen Funktionen für das Zellwachstum nicht beeinträchtigen. KW - Myc KW - Transkription KW - PAF1c KW - Transcription elongation KW - Immune evasion KW - Immunevasion Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-360459 ER - TY - THES A1 - Amini, Emad T1 - How central and peripheral clocks and the neuroendocrine system interact to time eclosion behavior in \(Drosophila\) \(melanogaster\) T1 - Wie zentrale und periphere Uhren und das neuroendokrine System zusammenwirken, um das Schlupfverhalten von \(Drosophila\) \(melanogaster\) zeitlich festzulegen N2 - To grow larger, insects must shed their old rigid exoskeleton and replace it with a new one. This process is called molting and the motor behavior that sheds the old cuticle is called ecdysis. Holometabolic insects have pupal stages in between their larval and adult forms, during which they perform metamorphosis. The pupal stage ends with eclosion, i.e., the emergence of the adult from the pupal shell. Insects typically eclose at a specific time during the day, likely when abiotic conditions are at their optimum. A newly eclosed insect is fragile and needs time to harden its exoskeleton. Hence, eclosion is regulated by sophisticated developmental and circadian timing mechanisms. In Drosophila melanogaster, eclosion is limited to a daily time window in the morning, regarded as the “eclosion gate”. In a population of laboratory flies entrained by light/dark cycles, most of the flies eclose around lights on. This rhythmic eclosion pattern is controlled by the circadian clock and persists even under constant conditions. Developmental timing is under the control of complex hormonal signaling, including the steroid ecdysone, insulin-like peptides, and prothoracicotropic hormone (PTTH). The interactions of the central circadian clock in the brain and a peripheral clock in the prothoracic gland (PG) that produces ecdysone are important for the circadian timing of eclosion. These two clocks are connected by a bilateral pair of peptidergic PTTH neurons (PTTHn) that project to the PG. Before each molt, the ecdysone level rises and then falls shortly before ecdysis. The falling ecdysone level must fall below a certain threshold value for the eclosion gate to open. The activity of PTTHn is inhibited by short neuropeptide F (sNPF) from the small ventrolateral neurons (sLNvs) and inhibition is thought to lead to a decrease in ecdysone production. The general aim of this thesis is to further the understanding of how the circadian clock and neuroendocrinal pathways are coordinated to drive eclosion rhythmicity and to identify when these endocrinal signaling pathways are active. In Chapter I, a series of conditional PTTHn silencing-based behavioral assays, combined with neuronal activity imaging techniques such as non-invasive ARG-Luc show that PTTH signaling is active and required shortly before eclosion and may serve to phase-adjust the activity of the PG at the end of pupal development. Trans-synaptic anatomical stainings identified the sLNvs, dorsal neurons 1 (DN1), dorsal neurons 2 (DN2), and lateral posterior neurons (LPNs) clock neurons as directly upstream of the PTTHn. Eclosion motor behavior is initiated by Ecdysis triggering hormone (ETH) which activates a pair of ventromedial (Vm) neurons to release eclosion hormone (EH) which positively feeds back to the source of ETH, the endocrine Inka cells. In Chapter II trans-synaptic tracing showed that most clock neurons provide input to the Vm and non-canonical EH neurons. Hence, clock can potentially influence the ETH/EH feedback loop. The activity profile of the Inka cells and Vm neurons before eclosion is described. Vm and Inka cells are active around seven hours before eclosion. Interestingly, all EH neurons appear to be exclusively peptidergic. In Chapter III, using chemoconnectomics, PTTHns were found to express receptors for sNPF, allatostatin A (AstA), allatostatin C (AstC), and myosuppressin (Ms), while EH neurons expressed only Ms and AstA receptors. Eclosion assays of flies with impaired AstA, AstC, or Ms signaling do not show arrhythmicity under constant conditions. However, optogenetic activation of the AstA neurons strongly suppresses eclosion. Chapter IV focuses on peripheral ventral’ Tracheal dendrite (v’Td) and class IV dendritic arborization (C4da) neurons. The C4da neurons mediate larval light avoidance through endocrine PTTH signaling. The v’Td neurons mainly receive O2/CO2 input from the trachea and are upstream of Vm neurons but are not required for eclosion rhythmicity. Conditional ablation of the C4da neurons or torso (receptor of PTTH) knock-out in the C4da neurons impaired eclosion rhythmicity. Six to seven hours before eclosion, PTTHn, C4da, and Vm neurons are active based on ARG-Luc imaging. Thus, C4da neurons may indirectly connect the PTTHn to the Vm neurons. In summary, this thesis advances our knowledge of the temporal activity and role of PTTH signaling during pupal development and rhythmic eclosion. It further provides a comprehensive characterization of the synaptic and peptidergic inputs from clock neurons to PTTHn and EH neurons. AstA, AstC, and Ms are identified as potential modulators of eclosion circuits and suggest an indirect effect of PTTH signaling on EH signaling via the peripheral sensory C4da neurons. N2 - Um zu wachsen, müssen Insekten ihr altes, starres Exoskelett abwerfen und durch ein neues ersetzen. Dieser Vorgang wird als Häutung bezeichnet, und das motorische Verhalten, bei dem die alte Kutikula abgestoßen wird, heißt Ekdysis. Holometabole Insekten haben zwischen ihrer Larven- und Erwachsenenform ein Puppenstadium, in welchem sie eine Metamorphose durchlaufen. Das Puppenstadium endet mit dem Schlüpfen des erwachsenen Tieres aus der Puppenhülle. Die Insekten schlüpfen in der Regel zu einem bestimmten Zeitpunkt am Tag, wenn die abiotischen Bedingungen optimal sind, da das frisch geschlüpfte Insekt zerbrechlich ist und Zeit braucht, um sein Exoskelett auszuhärten. Daher wird der Schlupf durch ausgeklügelte Mechanismen der Entwicklung und der inneren Uhr gesteuert. Bei Drosophila melanogaster ist der Sclupf auf ein tägliches Zeitfenster am Morgen beschränkt, das als "Schlupffenster" bezeichnet wird. In einer Population von Laborfliegen, die durch Licht/Dunkel-Zyklen gesteuert wird, schlüpfen die meisten Fliegen in etwa um das Einschalten der Beleuchtung. Dieses rhythmische Schlupfmuster wird von der inneren Uhr gesteuert und bleibt auch unter konstanten Bedingungen bestehen. Das Timing der Entwicklung wird von komplexen hormonellen Signalen gesteuert, darunter das Steroid Ecdyson, insulinähnliche Peptide und das prothorakotrope Hormon (PTTH). Die Wechselwirkungen zwischen der zentralen zirkadianen Uhr im Gehirn und einer peripheren Uhr in der Prothorakaldrüse (PG), die Ecdyson produziert, sind wichtig für die zirkadiane Zeitsteuerung des Schlupfs. Diese beiden Uhren sind durch ein bilaterales Paar peptiderger PTTH-Neuronen (PTTHn) verbunden, die in die PG projizieren. Vor jeder Häutung steigt der Ecdysonspiegel an und fällt dann kurz vor danach wieder ab. Der fallende Ecdysonspiegel muss einen bestimmten Schwellenwert unterschreiten, damit sich das Schlupffenster öffnen kann. Die Aktivität der PTTHn wird durch das kurze Neuropeptid F (sNPF) aus den kleinen ventrolateralen Neuronen (sLNvs) gehemmt, und es wird angenommen, dass die Hemmung zu einer Abnahme der Ecdysonproduktion führt. Das allgemeine Ziel dieser Thesis besteht darin, die Koordination zwischen der zirkadianen Uhr und den neuroendokrinen Signalwegen zur Steuerung der Eklosionsrhythmik weiter zu charakterisieren und zu ermitteln, wann diese endokrinen Signalwege aktiv sind. In Kapitel I zeigen eine Reihe von Verhaltenstests, die auf der konditionalen Ausschaltung von PTTHn basieren, in Kombination mit Techniken zur Darstellung neuronaler Aktivität, wie z. B. nicht-invasives ARG-Luc imaging, dass PTTH-Signale kurz vor dem Schlupf aktiv und erforderlich sind und zur Phasenanpassung der Aktivität der PG am Ende der Puppenentwicklung dienen könnten. Trans-synaptische anatomische Färbungen identifizierten die sLNvs, die dorsalen Neuronen 1 (DN1), die dorsalen Neuronen 2 (DN2) und die lateralen posterioren Neuronen (LPNs) als Uhrneuronen, die dem PTTHn direkt vorgeschaltet sind. Das motorische Schlupfverhalten wird durch das Ecdysis-auslösende Hormon (ETH) ausgelöst, das ein Paar ventromedialer (Vm) Neuronen zur Freisetzung des Eklosionshormons (EH) anregt, welches positiv an die Quelle des ETH, die endokrinen Inka-Zellen, zurückkoppelt. In Kapitel II zeigte die trans-synaptische Nachverfolgung, dass die meisten Uhrneuronen Input für die Vm- und nicht-kanonischen EH-Neuronen liefern, sodass die Uhr möglicherweise die ETH/EH-Rückkopplungsschleife beeinflussen kann. Das Aktivitätsprofil der Inka-Zellen und Vm-Neuronen vor dem Schlupf wird beschrieben. Vm- und Inka-Zellen sind etwa sieben Stunden vor dem Schlupf aktiv. Interessanterweise scheinen alle EH-Neuronen ausschließlich peptiderg zu sein. In Kapitel III wurde mit Hilfe von Chemoconnectomics festgestellt, dass PTTH-Neuronen Rezeptoren für sNPF, Allatostatin A (AstA), Allatostatin C (AstC) und Myosuppressin (Ms) exprimieren, während EH nur Ms- und AstA-Rezeptoren exprimieren. Eklosionsversuche mit Fliegen, deren AstA-, AstC- oder Ms-Signalübertragung beeinträchtigt ist, zeigen unter konstanten Bedingungen keine Arrhythmie. Eine optogenetische Aktivierung der AstA-Neuronen führt jedoch zu einer starken Unterdrückung des Schlupfs. Kapitel IV konzentriert sich auf die peripheren ventralen Trachealdendritischen Neurone (v'Td) und dendritische Verzweigungsneurone der Klasse IV (C4da). Die C4da-Neuronen vermitteln die Lichtvermeidung der Larven durch endokrine PTTH-Signale. Die v'Td-Neuronen erhalten hauptsächlich O2/CO2-Input aus den Tracheen und sind den Vm-Neuronen vorgeschaltet, werden aber für die Schlupfrhythmik nicht benötigt. Die bedingte Ablation der C4da-Neuronen und das Knock-out von torso (Rezeptor für PTTH) in den C4da-Neuronen beeinträchtigten die Schlupfrhythmik. Sechs bis sieben Stunden vor dem Schlupf sind die PTTHn-, C4da- und Vm-Neuronen aktiv. Somit könnten C4da-Neuronen indirekt die PTTHn mit den Vm-Neuronen verbinden. Zusammenfassend lässt sich sagen, dass diese Arbeit unser Wissen über das zeitliche Aktivitätsmuster und der Rolle des PTTH signalling während der Puppenentwicklung und dem rhythmisches Schlupf erweitert. Sie liefert auch eine umfassende Charakterisierung der synaptischen und peptidergen Eingänge von Uhrneuronen zu PTTHn- und EH-Neuronen. AstA, AstC und Ms wurden als potenzielle Modulatoren der neuronalen Schlupfschaltkreise identifiziert und deuten auf einen indirekten Effekt der PTTH-Signalgebung auf das EH signalling über die peripheren sensorischen C4da-Neuronen hin. KW - Prothoracicotropic hormone KW - Prothoracic gland KW - Eclosion KW - Eclosion hormone KW - C4da KW - v’Td KW - Neuropeptide KW - Neuroendokrines System KW - Taufliege Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-361309 ER - TY - THES A1 - Gabel, Martin Sebastian T1 - Behavioural resistance to \(Varroa\) \(destructor\) in the Western honeybee \(Apis\) \(mellifera\) - Mechanisms leading to decreased mite reproduction T1 - Resistenzverhalten der Westlichen Honigbiene \(Apis\) \(mellifera\) gegen \(Varroa\) \(destructor\) - Zu verringerter Milbenreproduktion führende Mechanismen N2 - The Western Honeybee (Apis mellifera) is among the most versatile species in the world. Its adaptability is rooted in thousands of the differently specialized individuals acting jointly together. Thus, bees that are able to handle a certain task or condition well can back up other individuals less capable to do so on the colony level. Vice versa, the latter individuals might perform better in other situations. This evolutionary recipe for success ensures the survival of colonies despite challenging habitat conditions. In this context, the ectoparasitic mite Varroa destructor reflects the most pronounced biotic challenge to honeybees worldwide. Without proper treatment, infested colonies rapidly dwindle and ultimately die. Nevertheless, resistance behaviours against this parasite have evolved in some populations through natural selection, enabling colonies to survive untreated. In this, different behaviours appear to be adapted to the respective habitat conditions and may complement each other. Yet, the why and how of this behavioural response to the mite remains largely unknown. My thesis focuses on the biological background of Varroa-resistance traits in honeybees and presents important findings for the comprehension of this complex host-parasite interaction. Based on this, I draw implications for both, applied bee breeding and scientific investigations in the field of Varroa-resistance. Specifically, I focus on two traits commonly found in resistant and, to a lower degree, also mite-susceptible colonies: decreased mite reproduction and the uncapping and subsequent recapping of sealed brood cells. Examining failures in the reproductive success of mites as a primary mechanism of Varroa-resistance, I was able to link them to specific bee behaviours and external factors. Since mite reproduction and the brood rearing of bees are inevitably connected, I first investigated the effects of brood interruption on the reproductive success of mites. Brood interruption decreased the reproductive success of mites both immediately and in the long term. By examining the causes of reproductive failure, I could show that this was mainly due to an increased share of infertile mites. Furthermore, I proved that interruption in brood rearing significantly increased the expression of recapping behaviour. These findings consequently showed a dynamic modulation of mite reproduction and recapping, as well as a direct effect of brood interruption on both traits. To further elucidate the plasticity in the expression of both traits, I studied mite reproduction, recapping behaviour and infestation levels over the course of three years. The resulting extensive dataset unveiled a significant seasonal variation in mite reproduction and recapping. In addition, I show that recapping decreases the reproductive success of mites by increasing delayed developing female offspring and cells lacking male offspring. By establishing a novel picture-based brood investigation method, I could furthermore show that both the removal of brood cells and recapping activity specifically target brood ages in which mite offspring would be expected. Recapping, however, did not cause infertility of mites. Considering the findings of my first study, this points towards complementary mechanisms. This underlines the importance of increased recapping behaviour and decreased mite reproduction as resistance traits, while at the same time emphasising the challenges of reliable data acquisition. To pave the way for a practical application of these findings in breeding, we then investigated the heritability (i.e., the share of genotypic variation on the observed phenotypic variation) of the accounted traits. By elaborating comparable test protocols and compiling data from over 4,000 colonies, we could, for the first time, demonstrate that recapping of infested cells and decreased reproductive success of mites are heritable (and thus selectable) traits in managed honeybee populations. My thesis proves the importance of recapping and decreased mite reproduction as resistance traits and therefore valuable goals for breeding efforts. In this regard, I shed light on the underlying mechanisms of both traits, and present clear evidence for their interaction and heritability. N2 - Die Westliche Honigbiene (Apis mellifera) zählt zu den anpassungsfähigsten Arten der Welt. Diese Anpassungsfähigkeit liegt in der Zusammenarbeit tausender unterschiedlich spezialisierter Individuen begründet. Auf Volksebene können Bienen, die mit einer bestimmten Aufgabe oder Situation gut umgehen können, andere Individuen, die dies weniger gut können, absichern. Andererseits können Letztere womöglich mit anderen Situationen besser umgehen. Dieses evolutionäre Erfolgskonzept sichert das Überleben der Völker selbst unter herausfordernden Habitatbedingungen. Die ektoparasitäre Milbe Varroa destructor stellt in diesem Zusammenhang weltweit die größte biotische Herausforderung dar. Ohne entsprechende Behandlung siechen die Völker rasch dahin und sterben schlussendlich. In einigen Populationen haben sich jedoch Resistenzmechanismen durch natürliche Selektion herausgebildet, die es den Völkern ermöglichen, ohne Behandlung zu überleben. Die verschiedenen Verhaltensweisen scheinen dabei an die jeweiligen Habitatbedingungen angepasst zu sein und sich gegenseitig zu ergänzen. Was diese Reaktion auf die Milben auslöst und wie sie funktioniert ist allerdings noch weitestgehend unbekannt. Meine Dissertation fokussiert den biologischen Hintergrund von Varroa-resistenzmechanismen bei Honigbienen und stellt dabei wichtige Erkenntnisse zum Verständnis dieser komplexen Parasit-Wirt-Beziehung vor. Darauf aufbauend leite ich Implikationen für die angewandte Bienenzucht und wissenschaftliche Untersuchungen auf dem Gebiet der Varroa-resistenz ab. Hierbei konzentriere ich mich insbesondere auf zwei Merkmale, die häufig in resistenten Völkern zu finden sind: die reduzierte Milbenreproduktion und das Entdeckeln und Wiederverdeckeln bereits verschlossener Brutzellen. Beide Merkmale treten in geringerem Umfang auch in milbenanfälligen Populationen auf und sind daher von besonderem Interesse für jedwede Zuchtbemühung mit dem Ziel der Varroa-resistenz. Durch die Untersuchung von Fehlern in der Reproduktion der Milben, konnte ich diesen Hauptmechanismus der Varroa-resistenz mit Verhaltensweisen der Bienen, sowie äußeren Faktoren in Verbindung setzen. Da die Milbenvermehrung untrennbar mit der Brutaufzucht der Bienen verbunden ist, habe ich zunächst die Einflüsse von Brutunterbrechungen auf den Vermehrungserfolg der Milben untersucht. Diese Untersuchung zeigte auf, dass Brutunterbrechungen den Vermehrungserfolg der Milben sowohl kurzfristig, als auch langfristig herabsetzen. Durch die Untersuchung der jeweils zugrundeliegenden Ursachen gescheiterter Milbenreproduktion konnte ich zeigen, dass dies vor Allem auf einen gesteigerten Anteil infertiler Milben zurückzuführen war. Des Weiteren konnte ich beweisen, dass die Unterbrechung der Brutaufzucht die Ausprägung des Wiederverdeckelns signifikant verstärkte. Folglich zeigten diese Ergebnisse eine dynamische Anpassung der Milbenreproduktion und des Wiederverdeckelns, sowie einen direkten Einfluss der Brutunterbrechungen auf beide Eigenschaften. Um die Plastizität der Ausprägung beider Merkmale genauer zu erklären, untersuchte ich daraufhin drei Jahre lang die Milbenvermehrung, das Verhalten des Wiederverdeckelns, sowie die Befallsentwicklung. Daraus resultierte ein umfangreicher Datensatz, der eine signifikante saisonale Variation der Milbenvermehrung und des Wiederverdeckelns belegte. Ich konnte außerdem eindeutig beweisen, dass das Wiederverdeckeln den Reproduktionserfolg der Milben herabsetzt, indem es die Anteile von verzögert heranwachsenden weiblichen Nachkommen und fehlenden Männchen steigert. Durch Anwendung einer neuartigen Bild-basierten Methode der Brutuntersuchung, konnte ich darüber hinaus zeigen, dass sich sowohl das Ausräumen, als auch das Wiederverdeckeln von Brutzellen auf Brutalter konzentriert, in denen Milbennachwuchs erwartet werden würde. Das Wiederverdeckeln trug jedoch nicht zur Infertilität der Milben bei, was zusammen mit den Ergebnissen meiner ersten Untersuchung auf komplementäre Mechanismen hinweist. Dies unterstreicht die Bedeutung des Wiederverdeckelns und der verminderten Milbenreproduktion als Resistenzmechanismen, hebt aber gleichzeitig auch die Herausforderungen einer verlässlichen Datenerhebung hervor. Um den Weg für die praktische Anwendung dieser Erkenntnisse in der Zuchtarbeit zu ebnen, untersuchten wir daraufhin die Erblichkeit (den Anteil der genotypischen Variation an der beobachteten phänotypischen Variation) der betrachteten Merkmale. Durch das Erarbeiten vergleichbarer Prüfprotokolle und Zusammenführen von Daten aus über 4000 Völkern, konnten wir erstmalig zeigen, dass das Wiederverdeckeln befallener Zellen und der verminderte Vermehrungserfolg der Milben erbliche und damit selektierbare Merkmale in bewirtschafteten Honigbienenpopulationen sind. Meine Dissertation beweist die Relevanz des Wiederverdeckelns und der verminderten Milbenreproduktion als Resistenzmerkmale und damit lohnende Ziele für Zuchtbemühungen. In diesem Zusammenhang beleuchtete ich verschiedene Mechanismen, die der Ausprägung beider Merkmale zugrunde liegen und lieferte eindeutige Beweise für deren Interaktion und Erblichkeit. KW - Varroa destructor KW - Resistenz KW - Biene KW - mite non-reproduction KW - recapping KW - Varroa resistance KW - biotechnical Varroa control KW - heritability KW - selection KW - honeybees KW - Varroa mites KW - Züchtung KW - Apis mellifera KW - Breeding Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-360536 ER - TY - JOUR A1 - Osmanoglu, Özge A1 - Gupta, Shishir K. A1 - Almasi, Anna A1 - Yagci, Seray A1 - Srivastava, Mugdha A1 - Araujo, Gabriel H. M. A1 - Nagy, Zoltan A1 - Balkenhol, Johannes A1 - Dandekar, Thomas T1 - Signaling network analysis reveals fostamatinib as a potential drug to control platelet hyperactivation during SARS-CoV-2 infection JF - Frontiers in Immunology N2 - Introduction Pro-thrombotic events are one of the prevalent causes of intensive care unit (ICU) admissions among COVID-19 patients, although the signaling events in the stimulated platelets are still unclear. Methods We conducted a comparative analysis of platelet transcriptome data from healthy donors, ICU, and non-ICU COVID-19 patients to elucidate these mechanisms. To surpass previous analyses, we constructed models of involved networks and control cascades by integrating a global human signaling network with transcriptome data. We investigated the control of platelet hyperactivation and the specific proteins involved. Results Our study revealed that control of the platelet network in ICU patients is significantly higher than in non-ICU patients. Non-ICU patients require control over fewer proteins for managing platelet hyperactivity compared to ICU patients. Identification of indispensable proteins highlighted key subnetworks, that are targetable for system control in COVID-19-related platelet hyperactivity. We scrutinized FDA-approved drugs targeting indispensable proteins and identified fostamatinib as a potent candidate for preventing thrombosis in COVID-19 patients. Discussion Our findings shed light on how SARS-CoV-2 efficiently affects host platelets by targeting indispensable and critical proteins involved in the control of platelet activity. We evaluated several drugs for specific control of platelet hyperactivity in ICU patients suffering from platelet hyperactivation. The focus of our approach is repurposing existing drugs for optimal control over the signaling network responsible for platelet hyperactivity in COVID-19 patients. Our study offers specific pharmacological recommendations, with drug prioritization tailored to the distinct network states observed in each patient condition. Interactive networks and detailed results can be accessed at https://fostamatinib.bioinfo-wuerz.eu/. KW - signaling network KW - controllability KW - platelet KW - SARS-CoV-2 KW - fostamatinib KW - drug repurposing KW - COVID-19 Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-354158 VL - 14 ER - TY - JOUR A1 - Carradec, Quentin A1 - Pelletier, Eric A1 - Da Silva, Corinne A1 - Alberti, Adriana A1 - Seeleuthner, Yoann A1 - Blanc-Mathieu, Romain A1 - Lima-Mendez, Gipsi A1 - Rocha, Fabio A1 - Tirichine, Leila A1 - Labadie, Karine A1 - Kirilovsky, Amos A1 - Bertrand, Alexis A1 - Engelen, Stefan A1 - Madoui, Mohammed-Amin A1 - Méheust, Raphaël A1 - Poulain, Julie A1 - Romac, Sarah A1 - Richter, Daniel J. A1 - Yoshikawa, Genki A1 - Dimier, Céline A1 - Kandels-Lewis, Stefanie A1 - Picheral, Marc A1 - Searson, Sarah A1 - Jaillon, Olivier A1 - Aury, Jean-Marc A1 - Karsenti, Eric A1 - Sullivan, Matthew B. A1 - Sunagawa, Shinichi A1 - Bork, Peer A1 - Not, Fabrice A1 - Hingamp, Pascal A1 - Raes, Jeroen A1 - Guidi, Lionel A1 - Ogata, Hiroyuki A1 - de Vargas, Colomban A1 - Iudicone, Daniele A1 - Bowler, Chris A1 - Wincker, Patrick T1 - A global ocean atlas of eukaryotic gene JF - Nature Communications N2 - While our knowledge about the roles of microbes and viruses in the ocean has increased tremendously due to recent advances in genomics and metagenomics, research on marine microbial eukaryotes and zooplankton has benefited much less from these new technologies because of their larger genomes, their enormous diversity, and largely unexplored physiologies. Here, we use a metatranscriptomics approach to capture expressed genes in open ocean Tara Oceans stations across four organismal size fractions. The individual sequence reads cluster into 116 million unigenes representing the largest reference collection of eukaryotic transcripts from any single biome. The catalog is used to unveil functions expressed by eukaryotic marine plankton, and to assess their functional biogeography. Almost half of the sequences have no similarity with known proteins, and a great number belong to new gene families with a restricted distribution in the ocean. Overall, the resource provides the foundations for exploring the roles of marine eukaryotes in ocean ecology and biogeochemistry. KW - genomics KW - marine biology KW - microbial ecology KW - water microbiology Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-222250 VL - 9 ER - TY - JOUR A1 - Brunk, Michael A1 - Sputh, Sebastian A1 - Doose, Sören A1 - van de Linde, Sebastian A1 - Terpitz, Ulrich T1 - HyphaTracker: An ImageJ toolbox for time-resolved analysis of spore germination in filamentous fungi JF - Scientific Reports N2 - The dynamics of early fungal development and its interference with physiological signals and environmental factors is yet poorly understood. Especially computational analysis tools for the evaluation of the process of early spore germination and germ tube formation are still lacking. For the time-resolved analysis of conidia germination of the filamentous ascomycete Fusarium fujikuroi we developed a straightforward toolbox implemented in ImageJ. It allows for processing of microscopic acquisitions (movies) of conidial germination starting with drift correction and data reduction prior to germling analysis. From the image time series germling related region of interests (ROIs) are extracted, which are analysed for their area, circularity, and timing. ROIs originating from germlings crossing other hyphae or the image boundaries are omitted during analysis. Each conidium/hypha is identified and related to its origin, thus allowing subsequent categorization. The efficiency of HyphaTracker was proofed and the accuracy was tested on simulated germlings at different signal-to-noise ratios. Bright-field microscopic images of conidial germination of rhodopsin-deficient F. fujikuroi mutants and their respective control strains were analysed with HyphaTracker. Consistent with our observation in earlier studies the CarO deficient mutant germinated earlier and grew faster than other, CarO expressing strains. KW - bioinformatics KW - cell growth KW - fungal biology KW - microscopy Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221691 VL - 8 ER - TY - JOUR A1 - Annunziata, Ida A1 - van de Vlekkert, Diantha A1 - Wolf, Elmar A1 - Finkelstein, David A1 - Neale, Geoffrey A1 - Machado, Eda A1 - Mosca, Rosario A1 - Campos, Yvan A1 - Tillman, Heather A1 - Roussel, Martine F. A1 - Weesner, Jason Andrew A1 - Fremuth, Leigh Ellen A1 - Qiu, Xiaohui A1 - Han, Min-Joon A1 - Grosveld, Gerard C. A1 - d'Azzo, Alessandra T1 - MYC competes with MiT/TFE in regulating lysosomal biogenesis and autophagy through an epigenetic rheostat JF - Nature Communications N2 - Coordinated regulation of the lysosomal and autophagic systems ensures basal catabolism and normal cell physiology, and failure of either system causes disease. Here we describe an epigenetic rheostat orchestrated by c-MYC and histone deacetylases that inhibits lysosomal and autophagic biogenesis by concomitantly repressing the expression of the transcription factors MiT/TFE and FOXH1, and that of lysosomal and autophagy genes. Inhibition of histone deacetylases abates c-MYC binding to the promoters of lysosomal and autophagy genes, granting promoter occupancy to the MiT/TFE members, TFEB and TFE3, and/or the autophagy regulator FOXH1. In pluripotent stem cells and cancer, suppression of lysosomal and autophagic function is directly downstream of c-MYC overexpression and may represent a hallmark of malignant transformation. We propose that, by determining the fate of these catabolic systems, this hierarchical switch regulates the adaptive response of cells to pathological and physiological cues that could be exploited therapeutically. KW - autophagy KW - cancer KW - cancer metabolism KW - cell biology KW - mechanisms of disease Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221189 VL - 10 ER - TY - JOUR A1 - Albrecht, Jörg A1 - Classen, Alice A1 - Vollstädt, Maximilian G.R. A1 - Mayr, Antonia A1 - Mollel, Neduvoto P. A1 - Schellenberger Costa, David A1 - Dulle, Hamadi I. A1 - Fischer, Markus A1 - Hemp, Andreas A1 - Howell, Kim M. A1 - Kleyer, Michael A1 - Nauss, Thomas A1 - Peters, Marcell K. A1 - Tschapka, Marco A1 - Steffan-Dewenter, Ingolf A1 - Böhning-Gaese, Katrin A1 - Schleuning, Matthias T1 - Plant and animal functional diversity drive mutualistic network assembly across an elevational gradient JF - Nature Communications N2 - Species' functional traits set the blueprint for pair-wise interactions in ecological networks. Yet, it is unknown to what extent the functional diversity of plant and animal communities controls network assembly along environmental gradients in real-world ecosystems. Here we address this question with a unique dataset of mutualistic bird-fruit, bird-flower and insect-flower interaction networks and associated functional traits of 200 plant and 282 animal species sampled along broad climate and land-use gradients on Mt. Kilimanjaro. We show that plant functional diversity is mainly limited by precipitation, while animal functional diversity is primarily limited by temperature. Furthermore, shifts in plant and animal functional diversity along the elevational gradient control the niche breadth and partitioning of the respective other trophic level. These findings reveal that climatic constraints on the functional diversity of either plants or animals determine the relative importance of bottom-up and top-down control in plant-animal interaction networks. KW - Traits-Environment Relationships KW - Species Traits KW - Ecological Networks KW - 4TH-Corner Problem KW - Multiple Traits KW - Bottom-up KW - Biodiversity KW - Community ecology KW - Ecological networks KW - Ecology KW - Ecosystem ecology Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221056 VL - 9 ER - TY - INPR A1 - Odenwald, Johanna A1 - Gabiatti, Bernardo A1 - Braune, Silke A1 - Shen, Siqi A1 - Zoltner, Martin A1 - Kramer, Susanne T1 - Beyond BioID: Streptavidin outcompetes antibody fluorescence signals in protein localization and readily visualises targets evading immunofluorescence detection T2 - eLife N2 - Immunofluorescence is a common method to localise proteins within their cellular context via fluorophore labelled antibodies and for some applications without alternative. However, some protein targets evade detection due to low protein abundance or accessibility issues. In addition, some imaging methods require a massive reduction in antigen density thus impeding detection of even medium-abundant proteins.Here, we show that the fusion of the target protein to TurboID, a biotin ligase labelling lysine residues in close proximity, and subsequent detection of biotinylation by fluorescent streptavidin offers an “all in one” solution to the above-mentioned restrictions. For a wide range of target proteins tested, the streptavidin signal was significantly stronger than an antibody signal, markedly improving the imaging sensitivity in expansion microscopy and correlative light and electron microscopy, with no loss in resolution. Importantly, proteins within phase-separated regions, such as the central channel of the nuclear pores, the nucleolus or RNA granules, were readily detected with streptavidin, while most antibodies fail to label proteins in these environments. When TurboID is used in tandem with an HA epitope tag, co-probing with streptavidin and anti-HA can be used to map antibody-accessibility to certain cellular regions. As a proof of principle, we mapped antibody access to all trypanosome nuclear pore proteins (NUPs) and found restricted antibody labelling of all FG NUPs of the central channel that are known to be phase-separated, while most non-FG Nups could be labelled. Lastly, we show that streptavidin imaging can resolve dynamic, temporally and spatially distinct sub-complexes and, in specific cases, reveal a history of dynamic protein interaction.In conclusion, streptavidin imaging has major advantages for the detection of lowly abundant or inaccessible proteins and in addition, can provide information on protein interactions and biophysical environment. KW - BioID KW - Streptavidin KW - antibody fluorescence signals KW - protein localization KW - immunofluorescence detection Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-360704 ER - TY - JOUR A1 - Andreska, Thomas A1 - Lüningschrör, Patrick A1 - Wolf, Daniel A1 - McFleder, Rhonda L. A1 - Ayon-Olivas, Maurilyn A1 - Rattka, Marta A1 - Drechsler, Christine A1 - Perschin, Veronika A1 - Blum, Robert A1 - Aufmkolk, Sarah A1 - Granado, Noelia A1 - Moratalla, Rosario A1 - Sauer, Markus A1 - Monoranu, Camelia A1 - Volkmann, Jens A1 - Ip, Chi Wang A1 - Stigloher, Christian A1 - Sendtner, Michael T1 - DRD1 signaling modulates TrkB turnover and BDNF sensitivity in direct pathway striatal medium spiny neurons JF - Cell Reports N2 - Highlights • Dopamine receptor-1 activation induces TrkB cell-surface expression in striatal neurons • Dopaminergic deficits cause TrkB accumulation and clustering in the ER • TrkB clusters colocalize with cargo receptor SORCS-2 in direct pathway striatal neurons • Intracellular TrkB clusters fail to fuse with lysosomes after dopamine depletion Summary Disturbed motor control is a hallmark of Parkinson’s disease (PD). Cortico-striatal synapses play a central role in motor learning and adaption, and brain-derived neurotrophic factor (BDNF) from cortico-striatal afferents modulates their plasticity via TrkB in striatal medium spiny projection neurons (SPNs). We studied the role of dopamine in modulating the sensitivity of direct pathway SPNs (dSPNs) to BDNF in cultures of fluorescence-activated cell sorting (FACS)-enriched D1-expressing SPNs and 6-hydroxydopamine (6-OHDA)-treated rats. DRD1 activation causes enhanced TrkB translocation to the cell surface and increased sensitivity for BDNF. In contrast, dopamine depletion in cultured dSPN neurons, 6-OHDA-treated rats, and postmortem brain of patients with PD reduces BDNF responsiveness and causes formation of intracellular TrkB clusters. These clusters associate with sortilin related VPS10 domain containing receptor 2 (SORCS-2) in multivesicular-like structures, which apparently protects them from lysosomal degradation. Thus, impaired TrkB processing might contribute to disturbed motor function in PD. KW - motor learning KW - cortico-striatal synapse KW - basal ganglia KW - direct pathway KW - DRD1 KW - dSPN KW - BDNF KW - TrkB KW - synaptic plasticity KW - GPCR Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349932 VL - 42 IS - 6 ER - TY - THES A1 - Dehmer, Markus T1 - A novel USP11-TCEAL1-mediated mechanism protects transcriptional elongation by RNA Polymerase II T1 - Ein neuer USP11-TCEAL1 vermittelter Mechanismus schützt die transkriptionelle Elongation der RNA Polymerase II N2 - Deregulated expression of MYC oncoproteins is a driving event in many human cancers. Therefore, understanding and targeting MYC protein-driven mechanisms in tumor biology remain a major challenge. Oncogenic transcription in MYCN-amplified neuroblastoma leads to the formation of the MYCN-BRCA1-USP11 complex that terminates transcription by evicting stalling RNAPII from chromatin. This reduces cellular stress and allows reinitiation of new rounds of transcription. Basically, tumors with amplified MYC genes have a high demand on well orchestration of transcriptional processes-dependent and independent from MYC proteins functions in gene regulation. To date, the cooperation between promoter-proximal termination and transcriptional elongation in cancer cells remains still incomplete in its understanding. In this study the putative role of the dubiquitinase Ubiquitin Specific Protease 11 (USP11) in transcription regulation was further investigated. First, several USP11 interaction partners involved in transcriptional regulation in neuroblastoma cancer cells were identified. In particular, the transcription elongation factor A like 1 (TCEAL1) protein, which assists USP11 to engage protein-protein interactions in a MYCN-dependent manner, was characterized. The data clearly show that TCEAL1 acts as a pro-transcriptional factor for RNA polymerase II (RNAPII)-medi- ated transcription. In detail, TCEAL1 controls the transcription factor S-II (TFIIS), a factor that assists RNAPII to escape from paused sites. The findings claim that TCEAL1 outcompetes the transcription elongation factor TFIIS in a non-catalytic manner on chromatin of highly expressed genes. This is reasoned by the need regulating TFIIS function in transcription. TCEAL1 equili- brates excessive backtracking and premature termination of transcription caused by TFIIS. Collectively, the work shed light on the stoichiometric control of TFIIS demand in transcriptional regulation via the USP11-TCEAL1-USP7 complex. This complex protects RNAPII from TFIIS-mediated termination helping to regulate productive transcription of highly active genes in neuroblastoma. N2 - Die deregulierte Expression von MYC Onkoproteinen ist ein zentrales Event in vielen huma-nen Krebsarten. Aus diesem Grund sind das Verständnis und die gezielte Bekämpfung MYC-getriebener Mechanismen in der Tumorbiologie nach wie vor eine große Herausforderung. In MYCN-amplifizierten Neuroblastomen führt eine übermäßig hohe Transkriptionsrate zur stress-bedingten Rekrutierung des MYCN-BRCA1-USP11-Komplexes. Dieser Komplex be-endet vorzeitig die Transkription, indem er RNAPII Moleküle vom Chromatin wirft. Durch diesen Mechanismus wird zellulärer Stress reduziert und ermöglicht dadurch einen erneuten Start der Transkription. Grundsätzlich stellen Tumoren mit einer Amplifikation von einem der MYC Proteine hohe Anforderungen an eine feine Abstimmung der einzelnen Schritte in der Transkription. Dies ist sowohl abhängig als auch unabhängig von den bereits beschriebe-nen Funktionen der MYC-Proteine in der Genregulation. Bis heute ist das Zusammenspiel zwischen promoter-proximaler Termination und transkriptioneller Elongation noch nicht vollständig aufgeklärt. In dieser Studie wurde eine potenzielle Rolle von USP11 in der Regulation der Transkription weitergehend untersucht. Zunächst wurden mehrere Interaktionspartner von USP11, die an der Regulation der Transkription in Neuroblastom Krebszellen beteiligt sind, identifiziert. Es wurde insbesondere das Transcription Elongation Factor A Like 1 (TCEAL1) Protein charak-terisiert. Dieses Protein unterstützt USP11 dabei, Protein-Protein-Interaktionen MYCN-vermittelt einzugehen. Die Daten zeigen, dass TCEAL1 als pro-transkriptioneller Faktor für die RNA-Polymerase II (RNAPII) -vermittelte Transkription fungiert. Genauer, TCEAL1 kontrolliert den Transkriptionsfaktor S-II (TFIIS), einen Faktor, der der RNAPII dabei hilft, die Transkription nach einem kurzen Pausieren („pausing“) fortzusetzen. Die Ergebnisse zei-gen, dass TCEAL1 den Elongationsfaktor TFIIS auf nicht-katalytische Weise von dem Chromatin von hochexprimierten Genen verdrängt. Dies ist darin begründet, dass die Funkti-on von TFIIS bei der Transkription reguliert werden muss. TCEAL1 gleicht übermäßiges Zurückwandern der RNAPII und die vorzeitige Beendigung der Transkription, das durch TFIIS vermittelt wird, aus. Diese Arbeit gibt Aufschluss über die stöchiometrische Kontrolle des TFIIS-Bedarfs bei der Transkriptionsregulation durch den USP11-TCEAL1-USP7-Komplex. Dieser Komplex schützt die RNAPII vor der TFIIS-vermittelter Termination der Transkription und trägt zur Regulierung einer produktiven Transkription hochaktiver Gene im Neuroblastom bei. KW - Transkription KW - N-Myc KW - Transcription Regulation KW - Pause Release KW - Ubiquitin Specific Protease 11 KW - transcription elongation factor A (SII)-like 1 (TCEAL1) KW - RNA Polymerase II (RNAPII) KW - Transcriptional Stress Response Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-360544 ER -