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- Pesticides (3)
- Pestizid (3)
- ecotoxicology (3)
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- Abwasserreinigung (1)
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Despite the significant presence of neuroactive substances in the environment, bioassays that allow to detect diverse groups of neuroactive mechanisms of action are not well developed and not properly integrated into environmental monitoring and chemical regulation. Therefore, there is a need to develop testing methods which are amenable for fast and high-throughput neurotoxicity testing. The overall goal of this thesis work is to develop a test method for the toxicological characterization and screening of neuroactive substances and their mixtures which could be used for prospective and diagnostic hazard assessment.
In this thesis, the behavior of zebrafish embryos was explored as a promising tool to distinguish between different neuroactive mechanisms of action. Recently, new behavioral tests have been developed including photomotor response (PMR), locomotor response (LMR) and spontaneous tail coiling (STC) tests. However, the experimental parameters of these tests lack consistency in protocols such as exposure time, imaging time, age of exposure, endpoint parameter etc. To understand how experimental parameters may influence the toxicological interpretation of behavior tests, a systematic review of existing behavioral assays was conducted in Chapter 2. Results show that exposure concentration and exposure duration highly influenced the comparability between different test methods and the spontaneous tail coiling (STC) test was selected for further testing based on its relative higher sensitivity and capacity to detect neuroactive substances (Chapter 2).
STC is the first observable motor activity generated by the developing neural network of the embryo which is assumed to occur as a result of the innervation of the muscle by the primary motor neurons. Therefore, STC could be a useful endpoint to detect effect on the muscle innervation and also the on the whole nervous system. Consequently, important parameters of the STC test were optimized and an automated workflow to evaluate the STC with the open access software KNIME® was developed (Chapter 3).
To appropriately interpret the observed effect of a single chemical and especially mixture effects, requires the understanding of toxicokinetics and biotransformation. Most importantly, the biotransformation capacity of zebrafish embryos might be limited and this could be a challenge for assessment of chemicals such as organophosphates which require a bioactivation step to effectively inhibit the acetylcholinesterase (AChE) enzyme. Therefore, the influence of the potential limited biotransformation on the toxicity pathway of a typical organophosphate, chlorpyrifos, was investigated in Chapter 5. Chlorpyrifos could not inhibit AChE and this was attributed to possible lack of biotransformation in 24 hpf embryos (Chapter 5).
Since neuroactive substances occur in the environment as mixtures, it is therefore more realistic to assess their combined effect rather than individually. Therefore, mixture toxicity was predicted using the concentration addition and independent action models. Result shows that mixtures of neuroactive substances with different mechanisms of action but similar effects can be predicted with concentration addition and independent action (Chapter 4). Apart
from being able to predict the combined effect of neuroactive substances for prospective risk assessment, it is also important to assess in retrospect the combined neurotoxic effect of environmental samples since neuroactive substances are the largest group of chemicals occurring in the environment. In Chapter 6, the STC test was found to be capable of detecting neurotoxic effects of a wastewater effluent sample. Hence, the STC test is proposed as an effect based tool for monitoring environmental acute and neurotoxic effects.
Overall, this thesis shows the utility and versatility of zebrafish embryo behavior testing for screening neuroactive substances and this allows to propose its use for prospective and diagnostic hazard assessment. This will enhance the move away from expensive and demanding animal testing. The information contained in this thesis is of great potential to provide precautionary solutions, not only for the exposure of humans to neuroactive chemicals but for the environment at large.
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 pesticides, especially insecticides, are an integral part of modern farming. However, these may often leave their target ecosystems and cause adverse effects in non- target, especially freshwater ecosystems, leading to their deterioration. In this thesis, the focus will be on Insect Growth Regulators (IGRs) that can in many ways cause disruption of the endocrine system of invertebrates. Freshwater invertebrates play important ecological, economic and medical roles, and disruption of their endocrine systems may be crucial, considering the important role hormones play in the developmental and reproductive processes in organisms. Although Endocrine Disruption Chemicals (EDCs) can affect moulting, behaviour, morphology, sexual maturity, time to first brood, egg development time, brood size (fecundity), and sex determination in invertebrates, there is currently no agreement upon how to characterize and assess endocrine disruption (ED). Current traditional ecotoxicity tests for Ecological Risk Assessment (ERA) show limitations on generating data at the population level that may be relevant for the assessment of EDCs, which effects may be sublethal, latent and persist for several generations of species (transgenerational).
It is therefore the primary objective of this thesis to use a test method to investigate adverse effects of EDCs on endpoints concerning development and reproduction in freshwater invertebrates. The full life-cycle test over two generations that includes all sensitive life stages of C. riparius (a sexual reproductive organism) allows an assessment of its reproduction and should be suitable for the investigation of long-term toxicity of EDCs in freshwater invertebrates. C. riparius is appropriate for this purpose because of its short life cycle that enables the assessment of functional endpoints of the organism over several generations. Moreover, the chironomid life cycle consists of a complete metamorphosis controlled by a well-known endocrine mechanism and the endocrine system of insects has been most investigated in great detail among invertebrates. Hence, the full life-cycle test with C. riparius provides an approach to assess functional endpoints (e.g. reproduction, sex ratio) that are population-relevant as a useful amendment to the ERA of EDCs. In the laboratory, C. riparius was exposed to environmentally-relevant concentrations of the selected IGRs in either spiked water or spiked sediment scenario over two subsequent generations.
The results reported in this thesis revealed significant effects of the IGRs on the development and the reproduction of C. riparius with the second (F1) generation showing greater sensitivity. These findings indicated for the first time the suitability of multigenerational testing for various groups of EDCs and strongly suggested considering the full life-cycle of C. riparius as an appropriate test method for a better assessment of EDCs in the freshwater environment. In conclusion, this thesis helps to detect additional information that can be extrapolated at population level and, thus, might contribute to better protection of freshwater ecosystems against the risks of Endocrine Disrupting Chemicals (EDCs.) It may furthermore contribute to changes in the ERA process that are necessary for a real implementation of the new European chemical legislation, REACH (Registration, Evaluation Authorization and Restriction of Chemicals). Finally, significant interactions between temperature, chemical exposure and generation were reported for the first time and, may help predict impacts that may occur in the future, in the field, under predicted climate change scenarios.
World’s ecosystems are under great pressure satisfying anthropogenic demands, with freshwaters being of central importance. The Millennium Ecosystem Assessment has identified anthropogenic land use and associated stressors as main drivers in jeopardizing stream ecosystem functions and the
biodiversity supported by freshwaters. Adverse effects on the biodiversity of freshwater organisms, such as macroinvertebrates, may propagate to fundamental ecosystem functions, such as organic matter breakdown (OMB) with potentially severe consequences for ecosystem services. In order to adequately protect and preserve freshwater ecosystems, investigations regarding potential and observed as well as direct and indirect effects of anthropogenic land use and associated stressors (e.g. nutrients, pesticides or heavy metals) on ecosystem functioning and stream biodiversity are needed. While greater species diversity most likely benefits ecosystem functions, the direction and magnitude of changes in ecosystem functioning depends primarily on species functional traits. In this context, the functional diversity of stream organisms has been suggested to be a more suitable predictor of changes in ecosystem functions than taxonomic diversity.
The thesis aims at investigating effects of anthropogenic land use on (i) three ecosystem functions by anthropogenic toxicants to identify effect thresholds (chapter 2), (ii) the organic matter breakdown by three land use categories to identify effects on the functional level (chapter 3) and (iii)on the stream community along an established land-use gradient to identify effects on the community level.
In chapter 2, I reviewed the literature regarding pesticide and heavy metal effects on OMB, primary production and community respiration. From each reviewed study that met inclusion criteria, the toxicant concentration resulting in a reduction of at least 20% in an ecosystem function was standardized based on laboratory toxicity data. Effect thresholds were based on the relationship between ecosystem functions and standardized concentration-effect relationships. The analysis revealed that more than one third of pesticide observations indicated reductions in ecosystem functions at concentrations that are assumed being protective in regulation. However, high variation within and between studies hampered the derivation of a concentration-effect relationship and thus effect thresholds.
In chapter 3, I conducted a field study to determine the microbial and invertebrate-mediated OMB by deploying fine and coarse mesh leaf bags in streams with forested, agricultural, vinicultural
and urban riparian land use. Additionally, physicochemical, geographical and habitat parameters were monitored to explain potential differences in OMB among land use types and sites. Regarding results, only microbial OMB differed between land use types. The microbial OMB showed a negative relationship with pH while the invertebrate-mediated OMB was positively related to tree cover. OMB responded to stressor gradients rather than directly to land use.
In chapter 4, macroinvertebrates were sampled in concert with leaf bag deployment and after species identification (i) the taxonomic diversity in terms of Simpson diversity and total taxonomic
richness (TTR) and (ii) the functional diversity in terms of bio-ecological traits and Rao’s quadratic entropy was determined for each community. Additionally, a land-use gradient was established and the response of the taxonomic and functional diversity of invertebrate communities along this gradient was investigated to examine whether these two metrics of biodiversity are predictive for the rate of OMB. Neither bio-ecological traits nor the functional diversity showed a significant relationship with
OMB. Although, TTR decreased with increasing anthropogenic stress and also the community structure and 26 % of bio-ecological traits were significantly related to the stress gradient, any of these shifts propagated to OMB.
Our results show that the complexity of real-world situations in freshwater ecosystems impedes the effect assessment of chemicals and land use for functional endpoints, and consequently our potential to predict changes. We conclude that current safety factors used in chemical risk assessment may not be sufficient for pesticides to protect functional endpoints. Furthermore, simplifying real-world stressor gradients into few land use categories was unsuitable to predict and quantify losses in OMB. Thus, the monitoring of specific stressors may be more relevant than crude land use categories to detect effects on ecosystem functions. This may, however, limit the large scale assessment of the status of OMB. Finally, despite several functional changes in the communities the functional diversity over several trait modalities remained similar. Neither taxonomic nor functional diversity were suitable predictors of OMB. Thus, when understanding anthropogenic impacts on the linkage between biodiversity and ecosystem functioning is of main interest, focusing on diversity metrics that are clearly linked to the stressor in question (Jackson et al. 2016) or integrating taxonomic and functional metrics (Mondy et al., 2012) might enhance our predictive capacity.
Die heutige Landwirtschaft ist in hohem Maße auf den Einsatz von Pestiziden angewiesen, um verschiedene Schädlinge zu bekämpfen und die Ernteerträge zu maximieren. Trotz detaillierter Vorschriften für den Einsatz von Pestiziden, die auf einem komplexen System der Risikobewertung beruhen, hat sich gezeigt, dass der weit verbreitete Einsatz dieser biologisch aktiven Substanzen eine Gefahr für die Umwelt darstellt. In Oberflächengewässern wurde beobachtet, dass die Pestizidbelastung die als noch umweltverträglich angesehenen Konzentrationen übersteigt und sich negativ auf die Ökologie der Fließgewässer auswirkt, was die Frage aufwirft, ob die derzeitige Risikobewertung einen nachhaltigen Einsatz von Pestiziden gewährleistet. Um diese Frage zu beantworten, hat das umfassende "Kleingewässer-Monitoring" (KgM) in den Jahren 2018 und 2019 das Vorkommen von Pestiziden und die damit verbundenen ökologischen Auswirkungen in 124 Fließgewässern in ganz Deutschland untersucht.
Basierend auf fünf wissenschaftlichen Publikationen, die aus dem KgM hervorgegangen sind, werden in dieser Arbeit die Pestizidbelastung in Fließgewässern, die ökologischen Auswirkungen und die regulatorischen Implikationen bewertet. Mehr als 1000 Wasserproben wurden auf über 100 Pestizid-Analyten untersucht, um das Vorkommen zu charakterisieren (Publikation 1). Die gemessenen Konzentrationen und Auswirkungen wurden zur Validierung der in der Risikobewertung vorhergesagten Umweltkonzentrationen und Wirkungschwellen verwendet (Veröffentlichung 2). Durch die gemeinsame Analyse von realen Pestizidanwendungsdaten und gemessenen Pestizidmischungen in Fließgewässern wurde die Missachtung von Pestizidmischungen in der Umwelt in der Risikobewertung beurteilt (Veröffentlichung 3). Das Risikopotenzial von Mischungen in Fließgewässern wurde zusätzlich mit Hilfe eines Verdachtsscreenings für 395 Chemikalien und einer Batterie von In-vitro-Bioassays untersucht (Publikation 4). Schließlich wurden die Ergebnisse des KgM verwendet, um die Eignung staatlicher Monitoringprogramme zur Identifizierung von Pestizidrisiken in Oberflächengewässern zu bewerten (Publikation 5).
Die Ergebnisse dieser Arbeit zeigen das weit verbreitete Vorkommen von Pestiziden in den Nichtzielökosystemen der Fließgewässer. Die Wasserproben wiesen eine Vielzahl von Pestiziden auf, die in komplexen Mischungen vor allem in kurzzeitigen Spitzenwerten nach Niederschlagsereignissen auftraten (Veröffentlichungen 1 & 4). Die jeweiligen Höchstwerte der Pestizidkonzentration wurden mit dem Rückgang empfindlicher Wirbellosenarten in Verbindung gebracht und überstiegen in etwa 80 % der landwirtschaftlich geprägten Fließgewässer die gesetzlich zulässigen Konzentrationen, welche als Schwellenwerte zum Teil noch als unzureichend für den Schutz der Wirbellosengemeinschaft angesehen wurden (Publikation 2). Das gleichzeitige Vorkommen von Pestiziden in Fließgewässern führte zu einem Risiko, das in der auf eine einzelne Substanzen ausgerichteten Risikobewertung in realistischen Worst-Case-Szenarien um einen Faktor von etwa 3,2 unterschätzt wurde. Dies wird durch die hohe Häufigkeit, mit der Nichtzielorganismen den Pestiziden ausgesetzt sind, weiter verstärkt (Veröffentlichung 3). Wasserproben, die nach Regenfällen entnommen wurden, verursachten in den Bioassays deutliche Effekte, die nur zu einem geringen Teil durch die vielen detektierten Analyten erklärbar waren, was auf die Relevanz unbekannter chemischer oder biologischer Mischungskomponenten hinweist (Publikation 4). Schließlich wurde festgestellt, dass die behördliche Überwachung von Oberflächengewässern gemäß der Wasserrahmenrichtlinie (WRRL) die Risiken von Pestiziden erheblich unterschätzt, da hier etwa drei Viertel der kritischen Pestizide und mehr als die Hälfte der gefährdeten Gewässer übersehen worden wären (Veröffentlichung 5).
Im Wesentlichen liefert diese Arbeit eine neue Ebene der Validierung der Risikobewertung von Pestiziden in aquatischen Ökosystemen, indem das Auftreten von Pestiziden und ihre Auswirkungen auf die Umwelt in einem bisher einzigartigen Maßstab bewertet werden. Die Ergebnisse zeigen generell, dass der derzeitige landwirtschaftliche Einsatz von Pestiziden zu erheblichen Auswirkungen auf die Fließgewässerökologie führt, die über das von der Risikobewertung tolerierte Maß hinausgehen. In dieser Arbeit wurden die Unterschätzung der Pestizidexposition, die potenzielle Unzulänglichkeit der gesetzlichen Schwellenwerte und die allgemeine Trägheit des Zulassungsverfahrens als Hauptursachen dafür ermittelt, dass entsprechende gesetzlich verankerte, ökologische Zielsetzungen momentan erwiesenermaßen nicht erreicht werden. Um einen nachhaltigen Einsatz von Pestiziden zu gewährleisten, schlägt die Arbeit wesentliche Änderungen der Risikobewertung vor. Monitoringprogramme wie das KgM, die über die derzeitigen staatlichen Überwachungsbemühungen hinausgehen, werden weiterhin erforderlich sein, um die Regulierungsbehörden für Pestizide ständig über die Gültigkeit ihrer prospektiven Risikobewertung zu informieren, die immer mit Unsicherheiten behaftet sein wird.