TY - THES A1 - Fischer, Robin T1 - Generating useful tools for future studies in the center of the circadian clock – defined knockout mutants for PERIOD and TIMELESS T1 - Generierung nützlicher Instrumente für zukünftige Studien im Zentrum der Inneren Uhr - definierte knockout Mutanten für PERIOD und TIMELESS N2 - To unravel the role of single genes underlying certain biological processes, scientists often use amorphic or hypomorphic alleles. In the past, such mutants were often created by chance. Enormous approaches with many animals and massive screening effort for striking phenotypes were necessary to find a needle in the haystack. Therefore at the beginning chemical mutagens or radiation were used to induce mutations in the genome. Later P-element insertions and inaccurate jump-outs enabled the advantage of potential larger deletions or inversions. The mutations were characterized and subsequently kept in smaller populations in the laboratories. Thus additional mutations with unknown background effects could accumulate. The precision of the knockout through homologous recombination and the additional advantage of being able to generate many useful rescue constructs that can be easily reintegrated into the target locus made us trying an ends-out targeting procedure of the two core clock genes period and timeless in Drosophila melanogaster. Instead of the endogenous region, a small fragment of approximately 100 base pairs remains including an attP-site that can be used as integration site for in vitro created rescue constructs. After a successful ends-out targeting procedure, the locus will be restored with e.g. flies expressing the endogenous gene under the native promoter at the original locus coupled to a fluorescence tag or expressing luciferase. We also linked this project to other research interests of our work group, like the epigenetic related ADAR-editing project of the Timeless protein, a promising newly discovered feature of time point specific timeless mRNA modification after transcription with yet unexplored consequences. The editing position within the Timeless protein is likewise interesting and not only noticed for the first time. This will render new insights into the otherwise not-satisfying investigation and quest for functional important sequences of the Timeless protein, which anyway shows less homology to other yet characterized proteins. Last but not least, we bothered with the question of the role of Shaggy on the circadian clock. The impact of an overexpression or downregulation of Shaggy on the pace of the clock is obvious and often described. The influence of Shaggy on Period and Timeless was also shown, but for the latter it is still controversially discussed. Some are talking of a Cryptochrome stabilization effect and rhythmic animals in constant light due to Shaggy overexpression, others show a decrease of Cryptochrome levels under these conditions. Also the constant light rhythmicity of the flies, as it was published, could not be repeated so far. We were able to expose the conditions behind the Cryptochrome stabilization and discuss possibilities for the phenomenon of rhythmicity under constant light due to Shaggy overexpression. N2 - Um die Rolle einzelner Gene hinter biologischen Prozessen zu entschlüsseln, bedienen sich Wissenschaftler häufig amorpher oder hypomorpher Allele. Diese wurden in der Vergangenheit oft auf Zufall basierend generiert. Gewaltige Ansätze mit zahllosen Tieren unter enormem Selektionsaufwand bei der Suche nach markanten Phänotypen waren notwendig um sprichwörtlich die Nadel im Heuhaufen zu finden. Zunächst wurden chemische Mutagene oder Strahlung verwendet um Mutationen im Genom zu induzieren. Später kamen P-element Insertionen und induziertes unpräzises Herausspringen der Transposons dazu. Das hatte den Vorteil, dass so unter Umstände größere Deletionen oder Inversionen entstanden. Die Mutationen wurden charakterisiert und die Tiere anschließend in kleinen Populationen gehalten. Dadurch konnten sich zusätzliche Mutationen mit möglichen Hintergrundeffekten unbemerkt ansammeln. Ebenso blieben weitere durchaus mögliche Mutationen aufgrund der Mutagene und dem deutlicheren Phänotyp der primären Mutation oftmals unbemerkt. Die Präzision eines Knockouts durch homologe Rekombination und der Vorteil, zusätzlich im Stande zu sein, jedes entworfene Rettungskonstrukt auf einfache Weise wieder einsetzen zu können, überzeugte uns, eine Ends-out Targeting Prozedur mit den zwei Uhr Basisgenen period und timeless in Drosophila melanogaster durchzuführen. Dabei soll ein geplanter Knockout zu einer kompletten Deletion des gesamten Bereichs durch homologe Rekombination führen. Anstelle der endogenen Region verbleibt lediglich ein kleines Fragment von ungefähr 100 Basenpaaren inklusive einer attP-Stelle, die als Insertionsstelle für in vitro hergestellte Konstrukte genutzt werden kann. Angestrebte Ziele sind beispielsweise Fliegen, die das endogene Gen unter der Kontrolle des ursprünglichen Promoters am originalen Lokus gebunden an einen Fluoreszenzmarker oder aber gekoppelt an Luziferase exprimieren. Wir koppelten dieses Projekt zusätzlich mit anderen Forschungsinteressen unserer Arbeitsgruppe, wie zum Beispiel dem epigenetischen ADAR-Editierungsprojekt des Timeless Proteins, einer vielversprechenden Neuentdeckung zeitpunktspezifischer und posttranskriptionaler Modifizierung der timeless mRNA, mit bisher noch unbekannten Folgen. Die Position der Editierung innerhalb des Timeless Proteins ist ebenfalls sehr interessant und nicht zum ersten Mal im Fokus von Wissenschaftlern. Dies wird neue Einblicke in die sonst bislang nicht zufriedenstellende Suche nach funktionell wichtigen Strukturen von Timeless bringen, welche aufgrund der geringen Homologie zu anderen bisher charakterisierten Proteinen bislang nur unzureichend bestimmt werden konnten. Zuletzt beschäftigten wir uns mit der Frage nach der Rolle von Shaggy bezüglich der inneren Uhr. Der Einfluss einer Überexpression oder Herabregulierung von Shaggy auf die Taktung der Uhr ist eindeutig und wurde schon oft beschrieben. Der Einfluss von Shaggy auf Period und Timeless wurde ebenfalls bereits gezeigt, wird jedoch im Falle des letzteren Proteins noch sehr kontrovers diskutiert. Während einige von einem Cryptochrom stabilisierenden Effekt und rhythmischen Tieren in konstanter Beleuchtung aufgrund von Shaggy Überexpression sprechen, zeigen andere einen Abfall des Cryptochromlevels unter eben genau diesen Umständen. Es war uns möglich die Umstände hinter der Cryptochromstabilisierung aufzudecken. Darüber hinaus zeigen wir mögliche Gründe für das Phänomen des Rhythmus im Dauerlicht von Shaggy Überexpressionstieren auf. KW - Biologische Uhr KW - Circadian clock KW - Period KW - Timeless KW - Genetic engineering KW - Shaggy KW - Taufliege KW - Knockout Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-119141 ER - TY - JOUR A1 - Scholz, Nicole A1 - Gehring, Jennifer A1 - Guan, Chonglin A1 - Ljaschenko, Dmitrij A1 - Fischer, Robin A1 - Lakshmanan, Vetrivel A1 - Kittel, Robert J. A1 - Langenhan, Tobias T1 - The adhesion GPCR Latrophilin/CIRL shapes mechanosensation JF - Cell Reports N2 - G-protein-coupled receptors (GPCRs) are typically regarded as chemosensors that control cellular states in response to soluble extracellular cues. However, the modality of stimuli recognized through adhesion GPCR (aGPCR), the second largest class of the GPCR superfamily, is unresolved. Our study characterizes the Drosophila aGPCR Latrophilin/dCirl, a prototype member of this enigmatic receptor class. We show that dCirl shapes the perception of tactile, proprioceptive, and auditory stimuli through chordotonal neurons, the principal mechanosensors of Drosophila. dCirl sensitizes these neurons for the detection of mechanical stimulation by amplifying their input-output function. Our results indicate that aGPCR may generally process and modulate the perception of mechanical signals, linking these important stimuli to the sensory canon of the GPCR superfamily. KW - \(\alpha\)-latrotoxin KW - chordotonal organs KW - Johnstons organ KW - ligand CD55 KW - hearing KW - binding KW - shear stress KW - protein-coupled receptors KW - drosophila larvae KW - domain Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148626 VL - 11 ER - TY - JOUR A1 - Fischer, Robin A1 - Helfrich-Förster, Charlotte A1 - Peschel, Nicolai T1 - GSK-3 Beta Does Not Stabilize Cryptochrome in the Circadian Clock of Drosophila JF - PLoS ONE N2 - Cryptochrome (CRY) is the primary photoreceptor of Drosophila’s circadian clock. It resets the circadian clock by promoting light-induced degradation of the clock protein Timeless (TIM) in the proteasome. Under constant light, the clock stops because TIM is absent, and the flies become arrhythmic. In addition to TIM degradation, light also induces CRY degradation. This depends on the interaction of CRY with several proteins such as the E3 ubiquitin ligases Jetlag (JET) and Ramshackle (BRWD3). However, CRY can seemingly also be stabilized by interaction with the kinase Shaggy (SGG), the GSK-3 beta fly orthologue. Consequently, flies with SGG overexpression in certain dorsal clock neurons are reported to remain rhythmic under constant light. We were interested in the interaction between CRY, Ramshackle and SGG and started to perform protein interaction studies in S2 cells. To our surprise, we were not able to replicate the results, that SGG overexpression does stabilize CRY, neither in S2 cells nor in the relevant clock neurons. SGG rather does the contrary. Furthermore, flies with SGG overexpression in the dorsal clock neurons became arrhythmic as did wild-type flies. Nevertheless, we could reproduce the published interaction of SGG with TIM, since flies with SGG overexpression in the lateral clock neurons shortened their free-running period. We conclude that SGG does not directly interact with CRY but rather with TIM. Furthermore we could demonstrate, that an unspecific antibody explains the observed stabilization effects on CRY. KW - neurons KW - RNA interference KW - hyperexpression techniques KW - circadian rhythms KW - Drosophila melanogaster KW - animal behavior KW - phosphorylation Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-180370 VL - 11 IS - 1 ER - TY - JOUR A1 - Lamaze, Angelique A1 - Öztürk-Çolak, Arzu A1 - Fischer, Robin A1 - Peschel, Nicolai A1 - Koh, Kyunghee A1 - Jepson, James E. C. T1 - Regulation of sleep plasticity by a thermo-sensitive circuit in Drosophila JF - Scientific Reports N2 - Sleep is a highly conserved and essential behaviour in many species, including the fruit fly Drosophila melanogaster. In the wild, sensory signalling encoding environmental information must be integrated with sleep drive to ensure that sleep is not initiated during detrimental conditions. However, the molecular and circuit mechanisms by which sleep timing is modulated by the environment are unclear. Here we introduce a novel behavioural paradigm to study this issue. We show that in male fruit flies, onset of the daytime siesta is delayed by ambient temperatures above 29°C. We term this effect Prolonged Morning Wakefulness (PMW). We show that signalling through the TrpA1 thermo-sensor is required for PMW, and that TrpA1 specifically impacts siesta onset, but not night sleep onset, in response to elevated temperatures. We identify two critical TrpA1-expressing circuits and show that both contact DN1p clock neurons, the output of which is also required for PMW. Finally, we identify the circadian blue-light photoreceptor CRYPTOCHROME as a molecular regulator of PMW, and propose a model in which the Drosophila nervous system integrates information encoding temperature, light, and time to dynamically control when sleep is initiated. Our results provide a platform to investigate how environmental inputs co-ordinately regulate sleep plasticity. KW - Circadian rhythms and sleep KW - Genetics KW - Drosophila melanogaster Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-181146 VL - 7 ER -