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Diet-related effects of antimicrobials in aquatic decomposer-shredder and periphyton-grazer systems
(2022)
Leaf-associated microbial decomposers as well as periphyton serve as important food sources for detritivorous and herbivorous macroinvertebrates (shredders and grazers) in streams. Shredders and grazers, in turn, provide not only collectors with food but also serve as prey for predators. Therefore, decomposer-shredder and periphyton-grazer systems (here summarized as freshwater biofilm-consumer systems) are highly important for the energy and nutrient supply in heterotrophic and autotrophic stream food webs. However, both systems can be affected by chemical stressors, amongst which antimicrobials (e.g., antibiotics, fungicides and algaecides) are of particular concern. Antimicrobials can impair shredders and grazers not only via waterborne exposure (waterborne effect pathway) but also through dietary exposure and microorganism-mediated alterations in the food quality of their diet (dietary effect pathway). Even though the relevance of the latter pathway received more attention in recent years, little is known about the mechanisms that are responsible for the observed effects in shredders and grazers. Therefore, the first objective of this thesis was to broaden the knowledge of indirect antimicrobial effects in a model shredder and grazer via the dietary pathway. Moreover, although freshwater biofilm-consumer systems are most likely exposed to antimicrobial mixtures comprised of different stressor groups, virtually nothing is known of these mixture effects in both systems. Therefore, the second objective was to assess and predict diet-related antimicrobial mixture effects in a model freshwater biofilm-consumer system. During this thesis, positive diet-related effects of a model antibiotic on the energy processing and physiology of the shredder Gammarus fossarum were observed. They were probably triggered by shifts in the leaf-associated microbial community in favor of aquatic fungi that increased the food quality of leaves for the shredder. Contrary to that, a model fungicide induced negative effects on the energy processing of G. fossarum via the dietary pathway, which can be explained by negative impacts on the microbial decomposition efficiency leading to a reduced food quality of leaf litter for gammarids. For diet-related antimicrobial effects in periphyton-grazer systems, a model algaecide altered the periphyton community composition by increasing nutritious and palatable algae. This resulted in an enhanced consumption and physiological fitness of the grazer Physella acuta. Finally, it was shown that complex horizontal interactions among leaf-associated microorganisms are involved, making diet-related antimicrobial mixture effects in the shredder G. fossarum difficult to predict. Thus, this thesis provides new insights into indirect diet-related effects of antimicrobials on shredders and grazers as well as demonstrates uncertainties of antimicrobial mixture effect predictions for freshwater biofilm-consumer systems. Moreover, the findings in this thesis are not only informative for regulatory authorities, as indirect effects and effects of mixtures across chemical classes are not considered in the environmental risk assessment of chemical substances, but also stimulate future research to close knowledge gaps identified during this work.
Environmental processes transforming inorganic nanoparticles: implications on aquatic invertebrates
(2020)
Engineered inorganic nanoparticles (EINPs) are produced and utilized on a large scale and will end up in surface waters. Once in surface waters, EINPs are subjected to transformations induced by environmental processes altering the particles’ fate and inherent toxicity. UV irradiation of photoactive EINPs is defined as one effect-inducing pathway, leading to the formation of reactive oxygen species (ROS), increasing EINP toxicity by exerting oxidative stress in aquatic life. Simultaneously, UV irradiation of photoactive EINP alters the toxicity of co-occurring micropollutants (e.g. pesticides) by affecting their degradation. The presence of natural organic matter (NOM) reduces the agglomeration and sedimentation of EINPs, extending the exposure of pelagic species, while delaying the exposure of benthic species living in and on the sediment, which is suggested as final sink for EINPs. However, the joint impact of NOM and UV irradiation on EINP-induced toxicity, but also EINP-induced degradation of micropollutants, and the resulting risk for aquatic biota, is poorly understood. Although potential effects of EINPs on benthic species are increasingly investigated, the importance of exposure pathways (waterborne or dietary) is unclear, along with the reciprocal pathway of EINPs, i.e. the transport back from aquatic to terrestrial ecosystems. Therefore, this thesis investigates: (i) how the presence of NOM affects the UV-induced toxicity of the model EINP titanium dioxide (nTiO2) on the pelagic organism Daphnia magna, (ii) to which extent UV irradiation of nTiO2 in the presence and absence of NOM modifies the toxicity of six selected pesticides in D. magna, (iii) potential exposure pathway dependent effects of nTiO2 and silver (nAg) EINPs on the benthic organism Gammarus fossarum, and (iv) the transport of nTiO2 and gold EINPs (nAu) via the merolimnic aquatic insect Chaetopteryx villosa back to terrestrial ecosystems. nTiO2 toxicity in D. magna increased up to 280-fold in the presence of UV light, and was mitigated by NOM up to 12-fold. Depending on the pesticide, UV irradiation of nTiO2 reduced but also enhanced pesticide toxicity, by (i) more efficient pesticide degradation, and presumably (ii) formation of toxic by-products, respectively. Likewise, NOM reduced and increased pesticide toxicity, induced by (i) protection of D. magna against locally acting ROS, and (ii) mitigation of pesticide degradation, respectively. Gammarus’ energy assimilation was significantly affected by both EINPs, however, with distinct variation in direction and pathway dependence between nTiO2 and nAg. EINP presence delayed C. villosa emergence by up to 30 days, and revealed up to 40% reduced lipid reserves, while the organisms carried substantial amounts of nAu (~1.5 ng/mg), and nTiO2 (up to 2.7 ng/mg). This thesis shows, that moving test conditions of EINPs towards a more field-relevant approach, meaningfully modifies the risk of EINPs for aquatic organisms. Thereby, more efforts need to be made to understand the relative importance of EINP exposure pathways, especially since a transferability between different types of EINPs may not be given. When considering typically applied risk assessment factors, adverse effects on aquatic systems might already be expected at currently predicted environmental EINP concentrations in the low ng-µg/L range.
In einem Großteil der Welt wird Grundwasser für die Versorgung von Siedlungen und Agrarflächen genutzt. Organismen, die im Grundwasser leben, erfüllen wichtige Funktionen im Ökosystem und haben positiven Einfluss auf die Grundwasserqualität. Um das Risiko negativer Effekte auf diese wertvollen Ökosysteme zu minimieren muss die entsprechende Sanierungsmethode, im Falle einer Grundwasserbehandlung, mit Vorsicht gewählt werden. In der vorliegenden Thesis wurde das Umweltrisiko von Carbo-Iron untersucht, ein Komposit aus nanoskaligem null-valentem Eisen und Aktivkohle zur in situ-Behandlung von Grundwasser. Des Weiteren wurde eine umfassende Beurteilung des Umweltrisikos und des Nutzens einer Grundwasserbehandlung mit Carbo-Iron durchgeführt.
Zu Beginn der Arbeit an der vorliegenden Thesis existierten noch keine Empfehlungen für Untersuchung der Ökotoxizität von Nanomaterialien. Daher bestanden viele Unsicherheiten hinsichtlich geeigneter Methoden. Im Rahmen dieser Thesis wurde eine Entscheidungshilfe entwickelt, um bei der ökotoxikologischen Untersuchung von Nanomaterialien systematisch geeignete methodische Schritte auszuwählen.
Mögliche Effekte von Carbo-Iron wurden in Tests mit embryonalen, juvenilen und adulten Lebensstadien des Zebrabärblings (Danio rerio) und juvenilen und adulten Amphipoden (Hyalella azteca) untersucht. Die gewählten Testsysteme basierten auf existierenden Testmethoden der OECD und EPA zur ökotoxikologischen Untersuchung von Chemikalien (OECD, 1992a, 2013a, 2013b; US EPA, 2000). Zusätzlich wurde die Aufnahme der Partikel in die genannten Testorganismen untersucht. In Zebrabärblingsembryonen wurden außerdem potentielle Effekte auf die Genexpression mittels Microarrays ermittelt. Die erhaltenen Daten wurden später mit Ergebnissen aus Tests mit dem Wasserfloh Daphnia magna, der Alge Scenedesmus vacuolatus, Larven der Mücke Chironomus riparius und nitrifizierenden Bodenmikroorganismen ergänzt.
In dem Fischembryotoxizitätstest wurde keine Passage der Carbo-Iron-Partikel durch das Chorion in den perivitellinen Raum oder den Embryo beobachtet. Nach der Exposition wurde Carbo-Iron im Darm von H. azteca und D. rerio, aber keinem anderen Gewebe oder Organen detektiert. Carbo-Iron hatte keine signifikanten Effekte auf die Nitrifikationsrate der Bodenmikroorganismen sowie Überleben und Wachstum des Zebrabärblings. Dennoch wurden signifikant negative Effekte auf Wachstum, Fütterungsrate und Reproduktion von H. azteca und auf das Überleben und die Reproduktion von D. magna festgestellt. Des Weiteren war die Entwicklungsrate von C. riparius und das Zellvolumen von S. vacuolatus negativ beeinflusst.
Anhand der durchgeführten Studien wurde basierend auf dem Ergebnis des Reproduktionstests mit D. magna und einem assessment factor von 10 für Carbo-Iron eine predicted no effect concentration von 0,1 mg/L ermittelt. Diese wurde mit modellierten und gemessenen Umweltkonzentrationen von Carbo-Iron verglichen die in einer Studie erhoben wurden, in denen Carbo-Iron zur Behandlung eines mit Chlorkohlenwasserstoffen kontaminierten Aquifers eingesetzt wurde, und Risiko-Quotienten wurden abgeleitet. Zur gesamtheitlichen Betrachtung wurde anschließend ein Schema zur Bewertung des Umweltrisikos vor und nach der Behandlung des Aquifers mit Carbo-Iron entwickelt. Die erhobenen Daten weisen auf ein reduziertes Umweltrisiko nach der Applikation von Carbo-Iron hin. Dementsprechend überwiegen die Vorteile einer Grundwasserbehandlung mit Carbo-Iron die potentiellen negativen Effekte auf die Umwelt.
With 47% land coverage in 2016, agricultural land was one of the largest terrestrial biomes in Germany. About 70% of the agricultural land was cropped area with associated pesticide applications. Agricultural land also represents an essential habitat for amphibians. Therefore, exposure of amphibians to agrochemicals, such as fertilizers and pesticides, seems likely. Pesticides can be highly toxic for amphibians, even a fraction of the original application rate may result in high amphibian mortality.
To evaluate the potential risk of pesticide exposure for amphibians, the temporal coincidence of amphibian presence on agricultural land and pesticide applications (N = 331) was analyzed for the fire-bellied toad (Bombina bombina), moor frog (Rana arvalis), spadefoot toad (Pelobates fuscus) and crested newt (Triturus cristatus) during spring migration. In 2007 and 2008, up to 80% of the migrating amphibians temporally coincided with pesticide applications in the study area of Müncheberg, about 50 km east of Berlin. Pesticide interception by plants ranged between 50 to 90% in winter cereals and 80 to 90% in winter rape. The highest coincidence was observed for the spadefoot toad, where 86.6% of the reproducing population was affected by a single pesticide in winter rape during stem elongation with 80% pesticide interception by plants. Late migrating species, such as the fire-bellied toad and the spadefoot toad, overlapped more with pesticide applications than early migrating species, such as the moor frog, did. Under favorable circumstances, the majority of early migrants may not coincide with the pesticide applications of arable fields during spring migration.
To evaluate the potential effect of pesticide applications on populations of the common frog (Rana temporaria), a landscape genetic study was conducted in the vinicultural area of Southern Palatinate. Due to small sample sizes at breeding sites within viniculture, several DNA sampling methods were tested. Furthermore, the novel repeated randomized selection of genotypes approach was developed to utilize genetic data from siblings for more reliable estimates of genetic parameters. Genetic analyses highlighted three of the breeding site populations located in viniculture as isolated from the meta-population. Genetic differentiation among breeding site populations in the viniculture (median pairwise FST=0.0215 at 2.34 km to 0.0987 at 2.39 km distance) was higher compared to genetic differentiation among breeding site populations in the Palatinate Forest (median pairwise FST=0.0041 at 5.39 km to 0.0159 at 9.40 km distance).
The presented studies add valuable information about the risk of pesticide exposure for amphibians in the terrestrial life stage and possible effects of agricultural land on amphibian meta-populations. To conserve endemic amphibian species and their (genetic) diversity in the long run, the risk assessment of pesticides and applied agricultural management measures need to be adjusted to protect amphibians adequately. In addition, other conservation measures such as the creation of new suitable breeding site should be considered to improve connectivity between breeding site populations and ensure the persistence of amphibians in the agricultural land.
Statistical eco(-toxico)logy
(2017)
Freshwaters are of immense importance for human well-being.
Nevertheless, they are currently facing unprecedented levels of threat from habitat loss and degradation, overexploitation, invasive species and
pollution.
To prevent risks to aquatic ecosystems, chemical substances, like agricultural pesticides, have to pass environmental risk assessment (ERA) before entering the market.
Concurrently, large-scale environmental monitoring is used for surveillance of biological and chemical conditions in freshwaters.
This thesis examines statistical methods currently used in ERA.
Moreover, it presents a national-scale compilation of chemical monitoring data, an analysis of drivers and dynamics of chemical pollution in streams and, provides a large-scale risk assessment by combination with results from ERA.
Additionally, software tools have been developed to integrate different datasets used in ERA.
The thesis starts with a brief introduction to ERA and environmental monitoring and gives an overview of the objectives of the thesis.
Chapter 2 addresses experimental setups and their statistical analyses using simulations.
The results show that current designs exhibit unacceptably low statistical power, that statistical methods chosen to fit the type of data provide higher power and that statistical practices in ERA need to be revised.
In chapter 3 we compiled all available pesticide monitoring data from Germany.
Hereby, we focused on small streams, similar to those considered in ERA and used threshold concentrations derived during ERA for a large-scale assessment of threats to freshwaters from pesticides.
This compilation resulted in the most comprehensive dataset on pesticide exposure currently available for Germany.
Using state-of-the-art statistical techniques, that explicitly take the limits of quantification into account, we demonstrate that 25% of small streams are at threat from pesticides.
In particular neonicotinoid pesticides are responsible for these threats.
These are associated with agricultural intensity and can be detected even at low levels of agricultural use.
Moreover, our results indicated that current monitoring underestimates pesticide risks, because of a sampling decoupled from precipitation events.
Additionally, we provide a first large-scale study of annual pesticide exposure dynamics.
Chapters 4 and 5 describe software solutions to simplify and accelerate the integration of data from ERA, environmental monitoring and ecotoxicology that is indispensable for the development of landscape-level risk assessment.
Overall, this thesis contributes to the emerging discipline of statistical ecotoxicology and shows that pesticides pose a large-scale threat to small streams.
Environmental monitoring can provide a post-authorisation feedback to ERA.
However, to protect freshwater ecosystems ERA and environmental monitoring need to be further refined and we provide software solutions to utilise existing data for this purpose.
Agricultural land-use may lead to brief pulse exposures of pesticides in edge-of-field streams, potentially resulting in adverse effects on aquatic macrophytes, invertebrates and ecosystem functions. The higher tier risk assessment is mainly based on pond mesocosms which are not designed to mimic stream-typical conditions. Relatively little is known on exposure and effect assessment using stream mesocosms.
Thus the present thesis evaluates the appliacability of the stream mesocosms to mimic stream-typical pulse exposures, to assess resulting effects on flora and fauna and to evaluate aquatic-terrestrial food web coupling. The first objective was to mimic stream-typical pulse exposure scenarios with different durations (≤ 1 to ≥ 24 hours). These exposure scenarios established using a fluorescence tracer were the methodological basis for the effect assessment of an herbicide and an insecticide. In order to evaluate the applicability of stream mesocosms for regulatory purposes, the second objective was to assess effects on two aquatic macrophytes following a 24-h pulse exposure with the herbicide iofensulfuron-sodium (1, 3, 10 and 30 µg/L; n = 3). Growth inhibition of up to 66 and 45% was observed for the total shoot length of Myriophyllum spicatum and Elodea canadensis, respectively. Recovery of this endpoint could be demonstrated within 42 days for both macrophytes. The third objective was to assess effects on structural and functional endpoints following a 6-h pulse exposure of the pyrethroid ether etofenprox (0.05, 0.5 and 5 µg/L; n = 4). The most sensitive structural (abundance of Cloeon simile) and functional (feeding rates of Asellus aquaticus) endpoint revealed significant effects at 0.05 µg/L etofenprox. This concentration was below field-measured etofenprox concentrations and thus suggests that pulse exposures adversely affect invertebrate populations and ecosystem functions in streams. Such pollutions of streams may also result in decreased emergence of aquatic insects and potentially lead to an insect-mediated transfer of pollutants to adjacent food webs. Test systems capable to assess aquatic-terrestrial effects are not yet integrated in mesocosm approaches but might be of interest for substances with bioaccumulation potential. Here, the fourth part provides an aquatic-terrestrial model ecosystem capable to assess cross-ecosystem effects. Information on the riparian food web such as the contribution of aquatic (up to 71%) and terrestrial (up to 29%) insect prey to the diet of the riparian spider Tetragnatha extensa was assessed via stable isotope ratios (δ13C and δ15N). Thus, the present thesis provides the methodological basis to assess aquatic-terrestrial pollutant transfer and effects on the riparian food web.
Overall the results of this thesis indicate, that stream mesocosms can be used to mimic stream-typical pulse exposures of pesticides, to assess resulting effects on macrophytes and invertebrates within prospective environmental risk assessment (ERA) and to evaluate changes in riparian food webs.
Leaf litter breakdown is a fundamental process in aquatic ecosystems, being mainly mediated by decomposer-detritivore systems that are composed of microbial decomposers and leaf-shredding, detritivorous invertebrates. The ecological integrity of these systems can, however, be disturbed, amongst others, by chemical stressors. Fungicides might pose a particular risk as they can have negative effects on the involved microbial decomposers but may also affect shredders via both waterborne toxicity and their diet; the latter by toxic effects due to dietary exposure as a result of fungicides’ accumulation on leaf material and by negatively affecting fungal leaf decomposers, on which shredders’ nutrition heavily relies. The primary aim of this thesis was therefore to provide an in-depth assessment of the ecotoxicological implications of fungicides in a model decomposer-detritivore system using a tiered experimental approach to investigate (1) waterborne toxicity in a model shredder, i.e., Gammarus fossarum, (2) structural and functional implications in leaf-associated microbial communities, and (3) the relative importance of waterborne and diet-related effects for the model shredder.
Additionally, knowledge gaps were tackled that were related to potential differences in the ecotoxicological impact of inorganic (also authorized for organic farming in large parts of the world) and organic fungicides, the mixture toxicity of these substances, the field-relevance of their effects, and the appropriateness of current environmental risk assessment (ERA).
In the course of this thesis, major differences in the effects of inorganic and organic fungicides on the model decomposer-detritivore system were uncovered; e.g., the palatability of leaves for G. fossarum was increased by inorganic fungicides but deteriorated by organic substances. Furthermore, non-additive action of fungicides was observed, rendering mixture effects of these substances hardly predictable. While the relative importance of the waterborne and diet-related effect pathway for the model shredder seems to depend on the fungicide group and the exposure concentration, it was demonstrated that neither path must be ignored due to additive action. Finally, it was shown that effects can be expected at field-relevant fungicide levels and that current ERA may provide insufficient protection for decomposer-detritivore systems. To safeguard aquatic ecosystem functioning, this thesis thus recommends including leaf-associated microbial communities and long-term feeding studies using detritus feeders in ERA testing schemes, and identifies several knowledge gaps whose filling seems mandatory to develop further reasonable refinements for fungicide ERA.
Der zunehmende Einsatz von Titandioxid-Nanopartikeln (nTiO2) birgt das Risiko eines erhöhten Eintrags in Oberflächengewässer, wo diese mit weiteren anthropogenen Stressoren (z.B. Schwermetalle) vorkommen können. Das gemeinsame Auftreten ermöglicht die Adsorption von Schwermetallen an nTiO2, welche aufgrund ihrer Agglomeration häufig aussedimentieren. Somit können Nanopartikel mit den adsorbierten Metallionen potentiell für pelagische aber auch benthische Organismen ein Risiko darstellen. Die kombinierte Toxizität von nTiO2 und Schwermetallen wird vermutlich durch die Eigenschaften der Stressoren, aber auch durch verschiedene Umweltparameter (z.B. organisches Material, pH, Ionenstärke) bestimmt.
Allerdings wurde der Einfluss dieser Faktoren bisher nicht systematisch untersucht. Daher zielte diese Arbeit darauf ab den Effekt von verschiedenen nTiO2-Produkten, welche sich in der Zusammensetzung der kristallinen Struktur unterschieden, auf die Toxizität von Kupfer (als Stellvertreter für Schwermetalle) für den pelagischen Testorganismus Daphnia magna in Gegenwart von verschiedenen Formen und Konzentrationen organischen Materials zu untersuchen. Es ist anzunehmen, dass die Dauer der Interaktion (=Alterung) die kombinierte Toxizität der Stressoren beeinflusst. Ergänzend wurde deshalb der Einfluss von nTiO2 auf die Kupfer-Toxizität nach einer Alterung unter dem Einfluss verschiedener Umweltparameter (nämlich organisches Material, pH, Ionenstärke) untersucht.
Des Weiteren wurde die Übertragbarkeit der wesentlichen Ergebnisse auf benthisch lebende Organismen mit Gammarus fossarum geprüft. Die vorliegende Arbeit zeigte für alle untersuchten Szenarien eine reduzierte Kupfer-Toxizität in Gegenwart von nTiO2, unabhängig von deren kristallinen Struktur. Dieser Effekt ließ sich auch auf benthische Lebewesen übertragen, obwohl die Exposition durch die Anwesenheit von nTiO2 aufgrund der Sedimentation mit dem adsorbierten Kupfer potenziell erhöht war.
Die erzielten Beobachtungen legen eine Verwendung von nTiO2 zur Aufreinigung von beispielsweise Abwasser nahe. Allerdings sollten potentielle Nebeneffekte (z.B. chronische Toxizität, Bildung von Sauerstoffradikalen) zunächst gründlich untersucht werden. Darüber hinaus sind die Übertragbarkeit auf andere Stressoren (z.B. andere Schwermetalle, organische Chemikalien) und der Verbleib von Schwermetallen in aquatischen Ökosystemen nach einer Sorption an nTiO2 ungewiss und bedürfen weiterer Forschung.
In the new epoch of Anthropocene, global freshwater resources are experiencing extensive degradation from a multitude of stressors. Consequently, freshwater ecosystems are threatened by a considerable loss of biodiversity as well as substantial decrease in adequate and secured freshwater supply for human usage, not only on local scales, but also on regional to global scales. Large scale assessments of human and ecological impacts of freshwater degradation enable an integrated freshwater management as well as complement small scale approaches. Geographic information systems (GIS) and spatial statistics (SS) have shown considerable potential in ecological and ecotoxicological research to quantify stressor impacts on humans and ecological entitles, and disentangle the relationships between drivers and ecological entities on large scales through an integrated spatial-ecological approach. However, integration of GIS and SS with ecological and ecotoxicological models are scarce and hence the large scale spatial picture of the extent and magnitude of freshwater stressors as well as their human and ecological impacts is still opaque. This Ph.D. thesis contributes novel GIS and SS tools as well as adapts and advances available spatial models and integrates them with ecological models to enable large scale human and ecological impacts identification from freshwater degradation. The main aim was to identify and quantify the effects of stressors, i.e climate change and trace metals, on the freshwater assemblage structure and trait composition, and human health, respectively, on large scales, i.e. European and Asian freshwater networks. The thesis starts with an introduction to the conceptual framework and objectives (chapter 1). It proceeds with outlining two novel open-source algorithms for quantification of the magnitude and effects of catchment scale stressors (chapter 2). The algorithms, i.e. jointly called ATRIC, automatically select an accumulation threshold for stream network extraction from digital elevation models (DEM) by assuring the highest concordance between DEM-derived and traditionally mapped stream networks. Moreover, they delineate catchments and upstream riparian corridors for given stream sampling points after snapping them to the DEM-derived stream network. ATRIC showed similar or better performance than the available comparable algorithms, and is capable of processing large scale datasets. It enables an integrated and transboundary management of freshwater resources by quantifying the magnitude of effects of catchment scale stressors. Spatially shifting temporal points (SSTP), outlined in chapter 3, estimates pooled within-time series (PTS) variograms by spatializing temporal data points and shifting them. Data were pooled by ensuring consistency of spatial structure and temporal stationarity within a time series, while pooling sufficient number of data points and increasing data density for a reliable variogram estimation. SSTP estimated PTS variograms showed higher precision than the available method. The method enables regional scale stressors quantification by filling spatial data gaps integrating temporal information in data scarce regions. In chapter 4, responses of the assumed climate-associated traits from six grouping features to 35 bioclimatic indices for five insect orders were compared, their potential for changing distribution pattern under future climate change was evaluated and the most influential climatic aspects were identified (chapter 4). Traits of temperature preference grouping feature and the insect order Ephemeroptera exhibited the strongest response to climate as well as the highest potential for changing distribution pattern, while seasonal radiation and moisture were the most influential climatic aspects that may drive a change in insect distribution pattern. The results contribute to the trait based freshwater monitoring and change prediction. In chapter 5, the concentrations of 10 trace metals in the drinking water sources were predicted and were compared with guideline values. In more than 53% of the total area of Pakistan, inhabited by more than 74 million people, the drinking water was predicted to be at risk from multiple trace metal contamination. The results inform freshwater management by identifying potential hot spots. The last chapter (6) synthesizes the results and provides a comprehensive discussion on the four studies and on their relevance for freshwater resources conservation and management.
Factors triggering the ecotoxicity of metal-based nanoparticles towards aquatic invertebrates
(2015)
Heutzutage werden Nanopartikel in großem Maßstab produziert, weshalb deren Eintrag in Oberflächengewässer immer wahrscheinlicher wird. Dort angelangt unterliegen sie verschiedenen umweltbedingten (Oberflächen-)Modifikationen, die in letzter Konsequenz eine Vielfalt von Nanopartikel-Agglomeraten unterschiedlicher Größe hervorbringen. Direkt davon betroffen sind aquatische Lebewesen, die einer entsprechenden Nanopartikelexposition in der Wasserphase ausgesetzt sind.
Nach Sedimentation der Agglomerate können aber ebenfalls benthische Organismen betroffen sein. Bisherige ökotoxikologische Untersuchungen haben solche umweltbedingten Einflüsse außer Acht gelassen und viel mehr nanopartikel-spezifische Charakteristika auf deren Wirkweise gegenüber pelagischen Vertretern untersucht. Aus diesem Grund ist eine systematische Untersuchung derer Faktoren von Nöten, die den Verbleib und das Verhalten aber auch die Toxizität von Nanopartikeln in der Umwelt maßgeblich beeinflussen. Die kumulative Arbeit dieser Dissertation macht sich dies zum Ziel und hinterfragt entsprechende Faktoren die einerseits durch Nanopartikel assoziierte Aspekte (definiert als i) inhärente Stoffeigenschaft des untersuchten Materials und ii) Nanopartikel Charakteristika)) und andererseits durch Umweltbedingungen in Oberflächengewässern geprägt sind. In diesem Kontext wurden verschiedene ökotoxikologische Untersuchungen mit inerten Titandioxid Nanopartikeln (nTiO2) und Ionen freisetzenden Silber Nanopartikeln (nAg) unter Berücksichtigung verschiedener Nanopartikel Charakteristika (z.B. initiale Partikelgröße, Oberflächengröße) und Umweltbedingungen (z.B. Ionenstärke, ultraviolettes Licht (UV-Licht)), durchgeführt.
Als Testorganismen dienten dazu die pelagischen bzw. benthischen Vertreter Daphnia magna und Gammarus fossarum. Die Ergebnisse deuten daraufhin, dass die Toxizität von nTiO2 und nAg gegenüber Daphnien maßgeblich durch das Adsorptionspotential (im Bezug auf das Anhaften der Partikel an die Organismenoberfläche) und das Umweltverhalten (Freisetzung von radikalen Sauerstoffspezies oder Metallionen) der Nanopartikel bestimmt wird.
Darüber hinaus wurde die Nanopartikeltoxizität von jenen inhärenten Stoffeigenschaften, Nanopartikelcharakteritika und Umweltbedingungen am meisten beeinflusst, welche die zuvor genannten Aspekte entweder verstärken oder abschwächen. Hierfür beispielhaft ist der toxizitätsverstärkende Effekt von UV-Licht auf nTiO2 in Experimenten mit Gammarus: Während eine Exposition der Organismen in absoluter Dunkelheit selbst bei 5,00 mg nTiO2/L keine Effekt hervorrief, kam es in der Anwesenheit von UV-Licht schon bei 0,20 mg nTiO2/L zu schwerwiegenden Effekten auf sublethaler und lethaler Ebene.
Unter Berücksichtigung der Ergebnisse dieser Dissertation sowie bisherige Erkenntnisse der Wissenschaft im Allgemeinen, ist die derzeitige Risikoeinschätzung von Nanopartikeln möglicherweise unprotektiv, sofern eine Interaktion von Nanopartikeln und Umwelteinflüssen unberücksichtigt bleibt