ARAMIS · Adaptive Radiation in Aquatic MIcrobial Species
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2021-03-01 → 2023-04-30
- EU contribution
- €203,852
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Adaptive Radiation in Aquatic MIcrobial Species
Understanding the ecological processes affecting freshwater sources is of capital importance in order to secure a sufficient supply of high quality water. Microorganisms hold a key position in freshwater ecosystems due to their ability to cycle and transform most bioactive compounds, but also in their trophic coupling to eukaryote predators. Both processes have a great impact on water quality, which has fueled a renewed interest in elucidating the spatio-temporal dynamics of the involved microbial taxa. Our ability to study microbial communities has steadily increased over the last decades. Recently, we have become capable of distinguishing between closely related bacteria, even those belonging to the same species. This has revealed that freshwater bacterial species are actually composed of several subspecies or ecotypes, each with different optimum growth conditions, which replace one another as the environment changes. This intra-species diversity ensures that the species remains present under different environmental conditions, presumably enhancing the stability of the whole ecosystem. The nature of this intra-species diversity is however unclear. Microbial species are difficult to define, as microorganisms can exchange genetic material via horizontal gene transfer. Because of this, some adaptive genes may not be exclusive of a single bacteria, but instead distributed across a common gene pool. Thus, each ecotype might not actually be a single entity, but a myriad of different bacteria all carrying the adaptive gene while differing otherwise. How are microbial species organized internally? What are the drivers of their diversification? Answering these questions could have large implications in the way we understand microbial species and ecosystems. The ARAMIS project (Adaptive Radiation in Aquatic MIcrobial Species) aims to advance our understanding on the nature of microbial species, their evolution, and the ecological consequences of intra-species diversity. To achieve this, we collected genomic and metagenomic data from microbial communities in several lakes, and analyzed the internal dynamics of several cosmopolitan freshwater bacterial species through space, time and environmental gradients. We concluded that for some species ecotypes are indeed fuzzy, and that the drivers of intra-species diversification can operate at the gene level rather than the genome level. Furthermore, while this study focused on selection as the driver of intra-species diversification, we found an unexpected signal of dispersal limitation when comparing populations of the same species inhabiting geographically distant lakes.
Data: CORDIS, © European Union
Project objective
Adaptive Radiation of Aquatic MIcrobial Species (ARAMIS).The action aims to understand the causes, mechanisms and consequences of adaptive radiation (i.e. the process in which organisms diversify rapidly to occupy ecological niches) in freshwater microbial communities. This will help solve several of the outstanding questions in the field of microbial ecology, such as how shifts in environmental conditions impact the trajectory of microbial evolution, the relative importance of horizontal versus vertical gene transfer in microbial ecosystems, or the definition of microbial ‘species’. As diversity is linked with stability, elucidating the factors driving diversification in freshwater taxa will also help us predict how such ecosystems may respond to future change.ARAMIS proposes the novel hypothesis that, while every freshwater clade has a unique evolutionary history, the environmental forces driving such evolution are fundamentally the same, both in nature and in relative importance. If validated, this simple paradigm would push the state of the art and allow the development of powerful conceptual models integrating environmental constraints, microbial diversification, and community stability. The hypothesis will be tested by combining metagenomics, metatranscriptomics and enrichment cultures over a set of more than 200 lake samples. This will contribute to a conceptual synthesis between community ecology and evolutionary biology by closing the gap between theoretical work and data-driven studies. ARAMIS has a high academic potential but, since it deals with the stability of freswater microbial populations, can also have social and public policy impact by bringing an ecoevolutionary perspective to the management of aquatic resources.
Original text from CORDIS.
Participants
- SVERIGES LANTBRUKSUNIVERSITET · UppsalaCoordinatorSweden
Links
- View on CORDIS
- DOI: 10.3030/892961
- https://www.slu.se/en/departments/aquatic-sciences-assessment/research/forskningsprojekt/active-research-projects/bio/fume/aramis/
Data: CORDIS, © European Union
