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Artificial light at night (ALAN), one form of human-induced rapid environmental change, is continuously spreading in space and time and increasing in intensity as part of the ongoing urbanization. A vast range of animals is known to be affected by ALAN as, among other things, it can mask natural light cues and change both the perceived as well as the actual predation risk. Since ALAN per se is restricted to the night, the majority of studies so far have focused on nocturnal species or behavioral changes during the night. How polyphasic species respond to ALAN has been largely overlooked, although they can possibly carry over effects of nighttime illumination into the day. Additionally, individuals within a species are known to consistently differ in their personality which includes risk-taking behavior. While this implies that ALAN can lead to varying anti-predatory responses in animals within a population, knowledge on this topic is still very limited. This thesis aims at investigating what initial behavioral reaction is caused by ALAN in polyphasic small mammals while also incorporating an animal’s personality. Nighttime and daytime activity, movement and foraging behavior of the bank vole (Myodes glareolus) were investigated in regards to effects of different light intensities and partial illumination in the laboratory. Additionally, changes in intra- and interspecific interactions of bank voles and striped field mice (Apodemus agrarius) subjected to ALAN were studied in experimental populations in semi-natural outdoor enclosures. Chapter I explores whether behavioral responses to ALAN of varying intensity are related to animal personality. Results showed that bank voles reduced movement and foraging already under dim light and that bold animals generally moved and foraged more than shy animals. Exclusively under bright illumination did bold animals exploit the food patches more than shy animals. The results demonstrate that bank voles are affected by light intensities prevalent in urban habitats. Additionally, certain light scenarios might lead to an advantage of and a shift towards certain personality types. Chapter II focusses on the effects of partial ALAN on foraging behavior of animals with varying animal personalities while extending the view towards possible carry-over effects of ALAN into the daytime. While bank voles reduced foraging behavior in illuminated areas at night, they increased foraging behavior in those areas at the subsequent day. Bold individuals generally had lower giving-up densities than shy individuals but this difference was especially pronounced during daytime at formerly illuminated food patches. Thus, ALAN can have carry-over effects into the daytime in polyphasic animals and thus has the potential to affect daytime intra- and interspecific interactions. Chapter III broadens the view from the individual to the population level. Experimental populations consisting of bank voles and striped field mice were established in large outdoor enclosures successively experienced natural and artificial light conditions at night. VHF telemetry data revealed that animals were predominantly active during the day under natural conditions. This difference between day and night vanished under ALAN. Additionally, conspecifics reduced home range overlap, proximity and activity synchrony while boldness was not associated with behavioral changed due to ALAN. The results suggest that ALAN has the potential to alter intraspecific interactions and thus can have fitness consequences on the population level. Overall, the present thesis shows that ALAN can affect nighttime and daytime behavior as well as intraspecific interactions of polyphasic small mammals. Differences in risk- taking behavior of individuals may vary in importance depending on other environmental variables. Thus, this thesis hopefully triggers broadening the view regarding the role of an animal’s personality in coping with ALAN and the effects on daytime behavior and diurnal species.
Der Streifenkiwi (Apteryx mantelli) kommt im Freiland nur auf der Nordinsel Neuseelands vor. Aufgrund des gefährdeten Bestands ist eine sich selbst erhaltene Zoopopulation wichtig. Kenntnisse des Verhaltens helfen, die Ansprüche der Tiere zu verstehen. Zudem können sie darüber Auskunft geben, inwiefern das Wohlbefinden eines Tieres gegeben ist. Durch die Untersuchung der Brutaktivität sollte ein Überblick über den allgemeinen Verlauf der Brut gegeben und Aktivitätsmuster für den Berliner Hahn erarbeitet werden, um den Verlauf zukünftiger Bruten einschätzen und eventuell positiv beeinflussen zu können. Dazu kamen die Untersuchung der täglichen Aktivität einer Henne sowie Beobachtungen des Verhaltens der Tiere. Diese dienten der Bestandsaufnahme der gezeigten Verhaltensweisen und sollten zusammen mit der Aktivität die Grundlage zur Einschätzung bilden, ob die Ansprüche der Kiwis im Zoo Berlin erfüllt werden, und Hinweise zur Verbesserung der Haltung geben. Die Brutaktivität des Hahnes konnte über drei Brutperioden hinweg detailliert dargestellt werden und zeigte, dass nicht nur innerhalb der Art sondern bei einem einzigen Tier unter ähnlichen Bedingungen die Variabilität so groß sein kann, dass sie für Vorhersagen über den Erfolg einer Brut nicht geeignet ist. Im Zusammenhang mit der Aktivität der Henne ließen sich keine Auffälligkeiten erkennen, die auf eine allgemeine Störung der Tiere schließen lassen oder für eine Beeinträchtigung der Brut verantwortlich gemacht werden könnten. Soweit aus den Beobachtungen im Freiland geschlossen werden kann, scheinen die Kiwis im Zoo ein weitgehend natürliches Verhalten zu zeigen. Die Haltungsbedingungen scheinen den Ansprüchen der Tiere zu entsprechen. Es ließen sich nur bedingt Strategien entwickeln, um die Bedingungen für die Brut und damit für die Nachzucht zu verbessern, da sich die Aktivität des Hahnes während der Brut von Jahr zu Jahr als unerwartet variabel erwies. Für ein weiteres Verständnis des Brutverhaltens und eine mögliche Verbesserung der Bedingungen wäre eine Untersuchung zum Einfluss verschiedener Umweltfaktoren auf die Brutaktivität des Hahnes wünschenswert.
Understanding stars, their magnetic activity phenomena and the underlying dynamo action is the foundation for understanding 'life, the universe and everything' - as stellar magnetic fields play a fundamental role for star and planet formation and for the terrestrial atmosphere and climate. Starspots are the fingerprints of magnetic field lines and thereby the most important sign of activity in a star's photosphere. However, they cannot be observed directly, as it is not (yet) possible to spacially resolve the surfaces of even the nearest neighbouring stars. Therefore, an indirect approach called 'Doppler imaging' is applied, which allows to reconstruct the surface spot distribution on rapidly rotating, active stars. In this work, data from 11 years of continuous spectroscopic observations of the active binary star EI Eridani are reduced and analysed. 34 Doppler maps are obtained and the problem of how to parameterise the information content of Doppler maps is discussed. Three approaches for parameter extraction are introduced and applied to all maps: average temperature, separated for several latitude bands; fractional spottedness; and, for the analysis of structural temperature distribution, longitudinal and latitudinal spot-occurrence functions. The resulting values do not show a distinct correlation with the proposed activity cycle as seen from photometric long-term observations, thereby suggesting that the photometric activity cycle is not accompanied by a spot cycle as seen on the Sun. The general morphology of the spot pattern on EI Eri remains persistent for the whole period of 11 years. In addition, a detailed parameter study is performed. Improved orbital parameters suggest that EI Eri might be complemented by a third star in a wide orbit of about 19 years. Preliminary differential rotation measurements are carried out, indicating an anti-solar orientation.