Refine
Has Fulltext
- yes (3)
Is part of the Bibliography
- yes (3)
Document Type
- Doctoral Thesis (3) (remove)
Keywords
- Taufliege (3) (remove)
Ziel der vorliegenden Arbeit war die nanoskopische Analyse struktureller Differenzierung und Plastizität präsynaptischer aktiver Zonen (AZs) an der NMJ von Drosophila melanogaster mittels hochauflösender, lichtmikroskopischer Bildgebung von Bruchpilot (Brp). In erster Linie wurde das lokalisationsmikroskopische Verfahren dSTORM angewendet. Es wurden neue Analyse-Algorithmen auf der Basis von HDBSCAN entwickelt, um eine objektive, in weiten Teilen automatisierte Quantifizierung bis auf Ebene der Substruktur der AZ zu ermöglichen. Die Differenzierung wurde am Beispiel phasischer und tonischer Synapsen, die an dieser NMJ durch Is- und Ib-Neurone gebildet werden, untersucht. Phasische Is-Synapsen mit hoher Freisetzungswahrscheinlichkeit zeigten kleinere, kompaktere AZs mit weniger Molekülen und höherer molekularer Dichte mit ebenfalls kleineren, kompakteren Brp-Subclustern. Akute strukturelle Plastizität wurde am Beispiel präsynaptischer Homöostase, bei der es zu einer kompensatorisch erhöhten Neurotransmitterfreisetzung kommt, analysiert. Interessanterweise zeigte sich hier ebenfalls eine kompaktere Konfiguration der AZ, die sich auch auf Ebene der Subcluster widerspiegelte, ohne Rekrutierung von Molekülen. Es konnte demonstriert werden, dass sich eine höhere Moleküldichte in der Lokalisationsmikroskopie in eine höhere Intensität und größere Fläche in der konfokalen Mikroskopie übersetzt, und damit der Zusammenhang zu scheinbar gegensätzlichen Vorbefunden hergestellt werden. Die Verdichtung bzw. Kompaktierung erscheint im Zusammenhang mit der Kopplungsdistanz zwischen VGCCs und präsynaptischen Vesikeln als plausibles Muster der effizienten Anordnung molekularer Komponenten der AZ. Die hier eingeführten Analysewerkzeuge und molekularbiologischen Strategien, basierend auf dem CRISPR/Cas9-System, zur Markierung von AZ-Komponenten können zukünftig zur weiteren Klärung der Bedeutung der molekularen Verdichtung als allgemeines Konzept der AZ-Differenzierung beitragen.
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.
Functional and genetic dissection of mechanosensory organs of \(Drosophila\) \(melanogaster\)
(2016)
In Drosophila larvae and adults, chordotonal organs (chos) are highly versatile mechanosensors
that are essential for proprioception, touch sensation and hearing. Chos share molecular,
anatomical and functional properties with the inner ear hair cells of mammals. These multiple
similarities make chos powerful models for the molecular study of mechanosensation.
In the present study, I have developed a preparation to directly record from the sensory neurons
of larval chos (from the lateral chos or lch5) and managed to correlate defined mechanical inputs
with the corresponding electrical outputs. The findings of this setup are described in several case
studies.
(1) The basal functional lch5 parameters, including the time course of response during continuous
mechanical stimulation and the recovery time between successive bouts of stimulation, was
characterized.
(2) The calcium-independent receptor of α-latrotoxin (dCIRL/Latrophilin), an Adhesion class G
protein-coupled receptor (aGPCR), is identified as a modulator of the mechanical signals
perceived by lch5 neurons. The results indicate that dCIRL/Latrophilin is required for the
perception of external and internal mechanical stimuli and shapes the sensitivity of neuronal
mechanosensation.
(3) By combining this setup with optogenetics, I have confirmed that dCIRL modulates lch5
neuronal activity at the level of their receptor current (sensory encoding) rather than their ability
to generate action potentials.
(4) dCIRL´s structural properties (e.g. ectodomain length) are essential for the mechanosensitive
properties of chordotonal neurons.
(5) The versatility of chos also provides an opportunity to study multimodalities at multiple levels.
In this context, I performed an experiment to directly record neuronal activities at different
temperatures. The results show that both spontaneous and mechanically evoked activity increase
in proportion to temperature, suggesting that dCIRL is not required for thermosensation in chos.
These findings, from the development of an assay of sound/vibration sensation, to neuronal
signal processing, to molecular aspects of mechanosensory transduction, have provided the first
insights into the mechanosensitivity of dCIRL.
In addition to the functional screening of peripheral sensory neurons, another
electrophysiological approach was applied in the central nervous system: dCIRL may impact the
excitability of the motor neurons in the ventral nerve cord (VNC). In the second part of my work,
whole-cell patch clamp recordings of motor neuron somata demonstrated that action potential
firing in the dCirl\(^K\)\(^O\) did not differ from control samples, indicating comparable membrane
excitability.