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Relative importance of plastic and genetic responses to weather conditions in long-lived bats
(2022)
In the light of the accelerating pace of environmental change, it is imperative to understand how populations and species can adapt to altered environmental conditions. This is a crucial step in predicting current and future population persistence and limits thereof. Genetic adaption and phenotypic plasticity are two main mechanisms that can mediate the process of adaptation and are of particular importance for non-dispersing species. While phenotypic plasticity may enable individuals to cope with short term environmental changes, genetic adaptation will often be required for populations to survive in situ over longer time spans. However, a rapid genetic response is expected particularly in species with fast life histories or large population sizes, leaving species with slow life histories potentially at higher extinction risk. The Bechstein’s bat (Myotis bechsteinii) is a mammal of 10 g weight that - despite its small size - is characterized by a slow life history, with low reproductive output and long lifespan, and is already considered to be of high conservation concern. Past work demonstrated body size to be a highly fitness-relevant trait in Bechstein’s bats. Body size is further known to be a pivotal trait shaping the pace of life histories in numerous species. Simultaneously, many studies reported noteworthy changes in body size as a response to shifting environments across different taxa. This suggested a potential for high plasticity in this trait in Bechstein’s bats as well; however, changes in body size could have vital impacts on demographic rates.
Therefore, this dissertation investigated the following questions: firstly, what shapes the fundamental development of body size in M. bechsteinii, and, specifically, is there an impact of weather conditions on body size? If so, in what form and magnitude? Secondly, how does body size subsequently influence the pace of life in females? What is the cost of a faster or slower pace of life, and how does fitness compare across individuals with slow and fast life histories? And finally, to what extent can changes in body size be attributed to either phenotypic plasticity or genetic adaptation? What is the evolutionary potential of body size in the populations? And, consequently, what implications can we draw regarding population persistence of these colonies?
To answer these questions, we analyzed a long-term dataset of over two decades collected from four wild Bechstein’s bat colonies. We used individual-based data on survival, reproduction and body size, built multi-generational pedigrees, and combined everything with meteorological data. In Manuscript 1 we found that, in contrast to the declining body size observed in many species, body size in Bechstein’s bats increased significantly over the last decades. We demonstrated that ambient temperature was linked to the development of body size and identified a sensitive time period in the prenatal growth phase, in which body size was most susceptible to the impact of temperature. We established that warmer summers resulted in larger bats, but that these large bats had higher mortality risks throughout their lives. Manuscript 2 then revealed the influence of body size on the pace of life in Bechstein’s bats and demonstrated high plasticity in intraspecific life history strategies. Large females were characterized by a faster pace of life and shorter lifespans, but surprisingly, lifetime reproductive success remained remarkably stable across individuals with different body sizes. The acceleration of their pace of life means that larger females compensated for their reduced longevity by an earlier reproduction and higher fecundity to reach similar overall fitness. Ultimately, differences in body size resulted in changes in population growth rate via the impact of size on generation times. Results of Manuscript 3 were then able to clarify the extent to which changes in body size were founded on either phenotypic plasticity or genetic adaptation. We demonstrated a particularly low heritability in hot summers, indicating that variance in body size was mostly driven by phenotypic plasticity, with few genetic constraints. During cold summers, behavioural adaptations by reproducing bats seem to be able to mitigate negative effects of cold temperatures. These behaviours, such as social aggregation or preference for warm roosts, are, however, essentially irrelevant in hot environments. In addition, a low evolvability of forearm length points to a low capacity to respond to selection pressures associated with the trait.
We can conclude that body size in M. bechsteinii has increased over the last two decades as a response to global warming and is only slightly constrained by its genetic underpinnings. We can further demonstrate a direct link between body size and the pace of life histories in the Bechstein’s bat populations and how changes in body size impact demographic rates via this linkage. In the context of climate change and hotter summers, our findings consequently suggest that body size will likely increase further if warm summers continue to become more frequent. Whether this plastic response of body size proves to be adaptive in the long term, however, remains to be seen. While, up to this point, switching to a faster life history has been successful in compensating fitness losses, this strategy requires sufficient habitat quality and is likely risky in times when extreme weather events are becoming more frequent, as predicted by most climate change scenarios.
Species have to cope with climate change either by migration or by adaptation and acclimatisation. Especially for long-living tree species with a low seed dispersal capacity (e.g. European beech, hereafter called beech), the in situ responses through genetic adaptation and phenotypic plasticity play an important role for their persistence. Beech, the dominant climax tree species in Central Europe, shows a high drought sensitivity and its distribution range is expected to shift northwards. On the other hand, projected northward shifts need to be taken with caution, as some studies suggest a sensitivity of beech to frost events in winter and spring. However, studies on the growth performance of cold-marginal beech populations are still rare. Previous studies on beech populations found local adaptation to drought and phenotypic plasticity in fitness-related traits as well as phenological traits. However, studies on the regeneration of beech under natural conditions are yet missing, although germination and establishment of young trees are a very first selective bottleneck and are crucial for tree population persistence and for successful range shifts.
This PhD-thesis aimed to identify the potential of plasticity and local adaptation in the important early life-history traits germination, establishment after the 1st year, and survival after the 2nd year in a reciprocal transplantation experiment at 11 sites across and even beyond the distribution range of beech (Manuscript 1). Moreover, this thesis investigated the climate sensitivity and the adaptation potential of beech populations by conducting dendroecological studies along a large climatic gradient across the distribution range (Manuscript 2) and along a strong winter temperature gradient towards the cold distribution margin in Poland (Manuscript 3). In addition, the impact of local climatic singularities was studied in a local study at the southern margin (Manuscript 4).
Warm and dry conditions limited natural regeneration, which was indicated by very low survival of young trees, even though germination rates increased with increasing temperature (Manuscript 1). This was also the case in parts of the distribution centre due to the hot and dry conditions in 2018. Although the transplantation experiment revealed high plasticity in the early life-history traits, this plasticity might thus not buffer against climate change under dry conditions. Local adaptation was not detected for any of these traits along the climatic gradient. In contrast, the results of the dendroecological study across the gradient (Manuscript 2) hint towards an adaptation potential of adult trees to drought at the southern margin. Thus, adult trees seemed to be adapted to drought at the southern margin, whereas tree growth in the distribution centre was sensitive to drought. These results indicate that parts of the centre may become ecologically marginal with increasing drought frequency in times of climate change. Interestingly, Manuscript 4 shows that beech growth was positively influenced by frequent fog immersion at the southern distribution margin in north-eastern Spain. This study underlines the importance of local climatic singularities, as they may allow marginal populations to grow in climate refugia in an otherwise unfavourable climate.
At the cold distribution margin, the study in Manuscript 1 found a remarkably higher survival of young trees in Sweden than in Poland. Moreover, the dendroecological studies revealed that beech was hampered by both drought at the cold-dry margin (Manuscript 2) and by winter cold at the cold-wet margin in Poland (Manuscript 3). All these results highlight the importance to study climate sensitivity of adult trees and the response of early life-history traits at the cold margin with a more differentiated view comparing cold-dry against the cold-wet populations and growing conditions. However, the high plasticity of the early life-history traits may allow for an increasing germination rate with climate warming at the northern margin and may thus facilitate natural regeneration there. In contrast, the dendroecological studies suggest that adult trees at the cold distribution margin may suffer either from drought or from winter cold and that the risk for spring frost may increase. Thus, the often-predicted compensation of dry-marginal population decline by a northward range expansion should be discussed more critically.
In conclusion, my PhD thesis provides new knowledge about the potential of natural regeneration and about climate sensitivity of adult trees across the distribution range of beech. Moreover, it underlines the importance to study both the young tree stages as well as adult trees to assess the performance and vulnerability of tree species under climate change, as both showed differences in their response to changing environmental conditions.
Unstable environments and habitats changing due to climate change force individuals to either respond by genetic adaptation, phenotypic plasticity or by dispersal to suitable environments. Theodoxus fluviatilis (Linneaus, 1758) is a good study organisms when researching phenotypic plasticity and genetic adaptation as it naturally appears in freshwater (FW) as well as brackish water (BW) and thus inhabits a wide range of environmental salinities (0-18‰). It is a euryhaline snail that can be found in shallow waters with stony ground or on Fucus spp. and has formed regional subgroups. The brackish water and the freshwater subgroups are spatially separated and the species cannot be found in areas inbetween, e.g. estuaries.
The species shows great variability in shell patterning and shell size and there is still debate whether the subgroups are distinguishable by these traits or not. The mitochdrial RNA marker cytochrome c subunit I did not show differences between the subgroups indicating that they must be closely related, but salinity tolerance has been observed to be higher in BW snails. This might be caused by the different protein expression patterns and osmolyte accumulation (measured as ninhydrin-positive substances) observed in this species in previous studies. The exact mechanisms regulating protein expression and osmolyte accumulation, however, are not fully understood yet.
Data collected for this thesis shows differences in shell size and suggests a less strict grouping of FW and BW individuals as shell sizes of one FW site are more similar to BW individuals than the other FW ones. A better salinity tolerance towards high salinities and a higher physiological salinity limit of BW snails was confirmed and extended by demonstrating an expanded tolerance range through slow acclimation to challenging salinities in snails from both subgroups. This was achieved by a shift in the slope of their reaction norms that was much more pronounced in BW snails than FW ones. S3 individuals showed a shift similar to that of BW individuals. The data for the salinity tolerance indicates that the underlying mechanism for these tolerances are a combination of phenotypic plasticity and genetic adaptation. Despite an acclimation and shift in the slope of the reaction norms and therefore an increased tolerance towards high salinities (plasticity) FW individuals from two collection sites were not able to cope with salinities as high as BW individuals (local adaptation). The general ability to mobilise free amino acids (FAA) as organic osmolytes was not the reason for this tolerance difference. Individuals from BW and FW sites were capable of accumulating quantities of FAAs equally well. Proline, alanine and urea were the most important components of the accumulated cocktail of organic osmolytes. Even though the total amount of FAAs accumulated under hyperosmotic conditions was the same in both subgroups, there were differences in the metabolic pathways involved in osmolyte accumulation in the foot muscle. The data indicates that the hydrolysis of storage proteins and the synthesis of proline and alanine are the main processes to avoid detrimental body volume shrinkage in T. fluviatilis. While FW individuals seemed to rely on the degradation of proteins and synthesis of alanine, BW individuals depended on newly synthesising proline and alanine and accumulating urea as a side product of transamination. The accumulation of urea is a new finding in aquatic living snails and has not been reported as a mechanism to avoid cell volume shrinkage in these animals.
Differing protein expression patterns were observed under control conditions across all collection sites. 9 spots showed volume changes in BW snails opposite to those of FW snails from collection sites S1 and S2. For 6 of those spots, S3 individuals showed patterns similar to those of BW individuals and for the remaining 3 they showed patterns similar to those of FW animals. The patterns observed when exposing snails to hypo- or hyperosmotic stress were not conclusive in relation to pinpointing individual spots that show the same pattern in all collection sites, but revealed the heterogeneity of protein expression in snails from the different collection sites and in the process of osmoregulation. It also showed the general tendency of protein reduction when snails where under osmotic stress of either kind (hypo- or hyperosmotic), which supports the hypothesis of storage protein degradation.
The investigation of an ANP-receptor showed two variations of the encoding sequence expressed in T. fluviatilis. S3 individuals as well as BW individuals were found to express one type, while FW individuals, with the exception of one sample expressed the other type. This showed that the FW subgroup of T. fluviatilis seems to be more heterogeneous than the BW subgroup, but also raises the question of the dispersal history of this species. The collected data indicates that T. fluviatilis individuals are firstly capable of surviving the acidity of a duck's gizzard and secondly can tolerate acute salinity changes to 16‰ when introduced into a new environment. Hence, if snails from the FW were to be transported to waters with a salinity of up to 16‰ by man, bird, drifting plants or some other means of transport, they would most likely survive and possibly be able to thrive and spread.
Neuronale Plastizität, also Veränderungen neuronaler Strukturen in ihrer funktionellen oder sogar anatomischen Erscheinung, ist noch im Erwachsenenalter nachweisbar. Diese kann durch Kurzzeit- oder Langzeitlernen bzw. -training verursacht sein. Zur Untersuchung von durch Langzeitlernen oder -training hervorgerufenen Effekten eignen sich insbesondere Musiker. Diese zeigen eine bemerkenswerte Fähigkeit, motorische und sensorische Aspekte zu verarbeiten. Viele der dabei ablaufenden Prozesse sind spezifisch für die Interaktion mit dem jeweiligen Instrument. Ziel der zugrunde liegenden Untersuchung war es, instrumentenspezifische Veränderungen in zerebralen und zerebellären Arealen zu identifizieren. Hierzu wurden zwei Gruppen von Instrumentalisten mittels funktioneller Magnet-resonanztomographie untersucht, die in demographischen Parametern und Instrumentalerfahrung weitgehend homogen waren, sich aber in der Art der Interaktion mit dem jeweiligen Instrument unterschieden. Beide Gruppen (Trompeter als Experimentalgruppe, Pianisten als Kontrollgruppe) führten Aufgaben mit isolierter oder kombinierter Lippen- bzw. Fingerbewegung auf einem Trompetenmodell oder einem Keypad durch. Hierbei wurden Trompeten- bzw. Klaviernoten oder Piktogramme von Händen gezeigt, um die geforderten Fingerbewegungen zu kodieren. Während des isolierten Fingerspiels auf dem Trompetenmodell, also ohne zusätzlichen auditorischen Stimulus, zeigten die Trompeter verstärkte Aktivierung im posterior-superioren Kleinhirn, dem primär sensomotorischen Kortex der dominanten Hemisphäre im Bereich der Lippe und des Körperstamms sowie dem linken primär auditorischen Kortex. Diese Ergebnisse legen die Existenz eines audito-motorischen, moto-motorischen sowie zerebro-zerebellären Regelkreises nahe, der bei kontextspezifischen Fingerbewegungen aktiviert wird. Darüber hinaus entwickelten die Trompeter beim kombinierten Lippen- und Fingerspiel sowie isolierten Lippenspiel eine stärkere bilaterale Aktivierung im Heschl Gyrus, obwohl die Pianisten lauter spielten. Dies unterstreicht die Rolle des primär auditorischen Kortex im Rahmen von durch Langzeittraining ausgebildeten auditorischen Feedbackmechanismen. Beim kombinierten Lippen- und Fingerspiel zeigten beide Gruppen eine Annäherung der primär somatosensorischen Repräsentationsareale der Lippe und Hand in der dominanten Hemisphäre im Vergleich zu den jeweils isolierten Bewegungen. Dies wirft die Frage auf, ob es sich bei dem beschriebenen Effekt um einen für die fokale Dystonie des Lippenansatzes ätiologisch relevanten, wie bisher angenommen, oder im Allgemeinen dem kombinierten Lippen- und Fingerspiel geschuldeten handelt. Eine primäre Ökonomisierung der Lippenmuskelaktivität, der eine sekundäre, mit der Spielerfahrung positiv korrelierende folgt, sowie eine niedrigere Sensibilitätsschwelle der Oberlippe konnten mit Hilfe der zusätzlich durchgeführten peripher physiologischen Messungen bei Trompetern gezeigt werden.
Die Fähigkeit Temperaturstress zu wiederstehen gilt als äßerst wichtig für die Fitness eines Individuums oder das Überleben von Arten. Lebewesen müssen daher effektive Mechanismen entwickeln, um unter belastenden Temperaturbedingungen überleben zu können. Reaktionen auf sich ändernde Umweltbedingungen könnnen schnell durch phänotypische Plastizität oder langsame durch genetische Adaptation erfolgen. Neben Temperaturstress haben möglicherweise auch andere Umweltfaktoren einen Effekt auf die Temperaturstressresistenz. Wir erforschten zunächst phänotypische Anpassungen der Temperaturstressresistenz, ausgelöst durch unterschiedliche Manipulationen der Umwelt, bei dem Augenfalter Bicyclus anynana. Temperaturinduzierte Plastizität bewirkte eine schnelle und deutliche Änderung in der Temperaturstressresistenz, dieser Effekt ist reversibel. Kurzzeitige Abhärtung ergab komplexere Muster, so war die Kältestressresistenz beispielsweise am höchsten bei intermediären Temperaturen. Die Temperaturstressresistenz konnte auch durch Futtererhältlichkeit, Alter und Lichtzyklus beeinflußt werden. Des weiteren wurde der Einfluß der Photoperiode auf die Temperaturstressresistenz an der Fliege Protophormia terranovae erforscht. Variationen der Temperaturstressresistenz konnten durch Änderungen in der Photoperiode hervorgerufen werden, so bewirkten kürzere Tageslängen kälteresistentere und längere Tage hitzeresistentere Phänotypen. Wir schlagen vor, dass es sich hierbei um adaptive saisonale Plastizität handelt. Neben Temperaturstress hat möglicherweise auch Inzucht einen negativen Einfluss auf die Fähigkeit, mit sich ändernden Umweltbedingungen zurechtzukommen. Das könnte das Aussterberisiko kleiner Populationen erhöhen, insbesondere wenn Häufigkeit und Intensität extremer Wetterereignisse in Zukunft zunehmen sollen. Wir untersuchten den Einfluss von Inzucht auf den Schlupferfolg, die Entwicklung und die Temperaturstresstoleranz bei dem tropischen Augenfalter Bicyclus anynana indem wir drei verschiedene Inzuchtniveaus bildeten( Ausgekreuzt, nach 1 und nach 2 Geschwisterverpaarungen). Bereits diese vergleichsweise niedrigen Inzuchtniveaus hatten einen negativen Einfluss auf die Reproduktion und Entwicklung bei günstigen Umweltbedingungen. Inzucht reduzierte auch die Kältetoleranz bei adulten Schmetterlingen, während es keinen Einluss auf die Hitzetoleranz gab. Wir schließen daraus das Stresstoleranz nicht zwangsläufig durch Inzucht negativ beeinflusst wird. Verringerte genetische Diversität als Konsequenz von Inzucht oder Drift verringert möglicherweise auch das evolutionäre Potential einer Population. Wir erforschten die Auswirkungen von Inzucht auf das evolutionäre Potential (die Fähigkeit, Kältetoleranz zu erhöhen) mit Hilfe künstlicher Selektion beginnend von drei Inzuchtniveaus (ausgekreuzt, eine und zwei Geschwisterverpaarungen.) Obwohl ein negativer Einfluss genetischer Erosion (z.B. durch Inzucht) auf das evolutionäre Potential theoretisch vorhergesagt wird, sind empirische Nachweise bisher kaum vorhanden. Unsere Studie zeigt eine deutliche Raktion auf die Selektion, deren Effekt in den ingezüchteten Populationen kleiner war als in den ausgekreuzten Populationen. Korrelierte Reaktionen auf die Selektion untersucht in 10 verschiedenen Merkmalen der Lebensgeschichte konnten nicht gefunden werden. Eine Inzuchtdepression ließ sich in einigen untersuchten Merkmalen nach wie vor nachweisen. Merkmale, die bedeutender für die Fitness sind, zeigten dagegen eine deutliche Erholung von der Inzuchtdepression. Wir konnten mit diese Studie experimentell zeigen, das erhöhte Inzuchtniveaus das evolutionäre Potential reduzieren und damit auch die Fähigkeit, sich an ändernde Umweltbedingungen anzupassen. Zuletzt untersuchten wir, ob die durch Selektion erhöhte Kältetoleranz für alle Entwicklungsstadien gilt. Es gab eine positive signifikante Reaktion auf die Selektion bei Imagines, die ein Tag alt waren (das Alter, in dem die Selektion stattgefunden hatte). Ältere Individuen zeigten eine ähnliche, jedoch schwächere Reaktion. Die erhöhte Kälteresistenz ließ sich jedoch nicht bei Eiern, Raupen oder Puppen nachweisen und war sogar geringer in den Selektionslinien im Vergleich zu den Kontrollinien bei Eiern und jungen Raupen. Diese Ergebnisse deuten auf Kosten erhöhter Kältetoleranz im adulten Stadium hin, so dass vermutlich weniger Ressourcen für den Nachwuchs in frühen Stadien der Ontogenie bleiben. Diese Dissertation verdeutlicht, wie wichtig es ist, sowohl genetische als auch Umwelteffekt zusammen zu betrachten, da beide interaktiv die Fähigkeit eines Organismus herausfordern sich an ändernde Bedingungen anzupassen. In Zeiten von durch den Menschen verursachten Verlust und/oder der Verkleinerung von Habitaten, die die Populationsgrößen verkleinern und damit auch die genetische Diversität, sowie erhöhtem Temperaturstress aufgrund des Klimawandels, wird das langfristige Überleben von Arten von dieser Fähigkeit abhängen.