H2020Individual fellowship2021–2023

EpiEcoEvo · The role of temperature and transmission route on parasite epidemiological, ecological and evolutionary dynamics

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2021-09-01 → 2023-08-31
EU contribution
€191,149
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

The role of temperature and transmission route on parasite epidemiological, ecological and evolutionary dynamics

Infectious diseases are of important concern to human health and species conservation, as exemplified by the rise of emerging zoonotic diseases globally over the past decades, and most starkly by the COVID-19 pandemic. The current climate and prediction of more emerging pandemics in the future, demonstrate that now, more than ever it is important to further our understanding of infectious disease epidemiology and transmission dynamics. The overall objective of this project was to disentangle the multifarious drivers of seasonal epidemics including temperature, host demography, transmission route and the broader ecological community through a combination of observational, experimental, and theoretical work using the Daphnia magna-Pasteuria ramosa model host-parasite system. Daphnia magna, are small aquatic crustaceans that live throughout the northern hemisphere. They mainly reproduce clonaly, but produce sexual resting eggs when conditions are poor, which can hatch when conditions improve. Pasteuria is a common bacterial parasite of Daphnia, which causes 100 % mortality in in infected hosts, and removes their ability to reproduce. It also causes the host to turn bright red in colour, making it easy to differentiate infected from uninfected individuals. It is transmitted from environmental reservoirs in the sediment, when Daphnia pick up spores while filter feeding. In the wild, seasonal epidemics of the parasite are observed in freshwater ponds. As temperature increases in the spring, Daphnia start to hatch from their resting eggs and their population increases in size. Other aquatic insects begin to hatch, including those that may prey on Daphnia. It has been hypothesized that these small predators may release parasite spores into the water when feeding on infected Daphnia (sloppy feeding) and contribute to transmission. A few weeks later, infections begin to be observed, and prevalence peaks around midsummer, usually reaching nearly 100 %. At the same time, the proportion of hosts in the population that are susceptible to many strains of the parasite declines, reaching nearly 0. The epidemic then declines and ends in the late summer. Because all of these things are happening simultaneously, it is difficult to attribute these dynamics to any particular driver. The objective of this project was to investigate how these various factors (temperature, transmission from the spore bank, sloppy feeding in the free water and selection for host resistance) interact to influence the repeatable seasonal epidemic dynamics observed in nature in order to further understand the drivers of epidemics, by pairing observational and experimental work.

Data: CORDIS, © European Union

Project objective

Despite their clear importance and potential to broadly influence host populations, little is known about pathogen interactions within a broader ecosystem. This project will use the well-studied Daphnia magna-Pasteuria ramosa host-parasite system as a model to investigate how various factors (temperature, route of transmission and selection for host resistance) interact to influence the repeatable seasonal epidemic dynamics observed in nature in order to further understand the ecological and evolutionary drivers of epidemics. The novelty offered by this project is that it will be using a combination of field observations, mesocosm and laboratory experiments along with mathematical modelling, aiming to quantify and measure the relative importance of factors that are often recognised to be important for epidemic dynamics, but not well understood. The originality offered by this project is that it will allow us to disentangle the complex relationships between hosts, parasites, the broader ecological community, and the abiotic environment and gain further insight to the rules that govern epidemic cycles and ecological feedback loops. By doing so, it allows to estimate the effect of climate change (in particular warmer summers) on the future dynamics of this host-parasite system. Understanding the drivers of infectious disease dynamics and the complex mechanisms of transmission and their relationship to the biotic and abiotic environment are more important than ever as we face the dual and linked challenges of global change and emerging infectious diseases.

Original text from CORDIS.

Participants

Links

Data: CORDIS, © European Union