Personal profile
Research
As the human population is growing, there is an increasing demand for efficient large-scale food production. However, intensive farming can have a negative impact on the biodiversity in agricultural landscapes. For example, the number of wild pollinating insects has declined during the last decades, and it is likely that one of the main reasons for this is the increased intensification of agriculture.
The decline in pollinating insects, such as bumblebees and butterflies, is worrying because, in addition to having a value in themselves, wild pollinating insects contribute with valuable ecosystem services. For instance, insect pollination is favourable or essential to produce many kinds of fruits and vegetables. This dilemma leads us to ask whether it is possible to maintain sufficient agricultural productivity while preserving pollination services provided by insects. An important step to answer this question is to better understand the long-term effects of land-use changes, such as agricultural intensification, on pollinators and their interactions with crops.
Modelling can help us predict both short- and long-term consequences of land-use changes on insect populations and on the plants that insects pollinate. In ecological models, it has traditionally been assumed that evolution is occurring sufficiently slowly that it can be neglected. However, evidence is accumulating that insects have the potential for rapid evolution. A more complete understanding of how land-use changes affect pollinating insects can therefore be achieved by an improved understanding of how interactions between insects and crops evolve over time as the insects develop novel adaptations as a response to the changes in the landscape.
In my research, I use mathematical modelling and computer simulations to investigate how land-use changes affect the evolution of pollinating insects and their ecological interactions with crops that benefit from pollination.
I have a general interest in mathematical and theoretical biology, especially theoretical evolutionary ecology.
I took my doctoral degree at the University of Gothenburg. In my doctoral thesis, I used spatially explicit population genetics modelling to improve the theoretical understanding of local adaptation (and the limits to local adaptation) along environmental gradients. I was particularly interested in the limits to local adaptation in extreme environments, such as at the edges of species’ ranges.
Here at CEC at Lund University, I am studying how land-use changes affect the evolution of pollinating insects and their mutualistic interactions with agricultural crops.
Subject classification (UKÄ)
- Evolutionary Biology
- Climate Science
- Environmental Sciences
Free keywords
- theoretical biology
- populationsgenetics
- pollinating insects
Expertise related to UN Sustainable Development Goals
In 2015, UN member states agreed to 17 global Sustainable Development Goals (SDGs) to end poverty, protect the planet and ensure prosperity for all. This person’s work contributes towards the following SDG(s):
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SDG 13 Climate Action
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SDG 15 Life on Land
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Collaborations the last five years
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Eco-Evolutionary Dynamics of Generalist and Specialist Pollinators Facing Plant Diversity Changes
Eriksson, M. & Pontarp, M., 2026 Mar, In: Ecology and Evolution. 16, 3, p. e73182Research output: Contribution to journal › Article › peer-review
Open Access -
Adaptive, maladaptive, neutral, or absent plasticity: Hidden caveats of reaction norms
Eriksson, M., Kinnby, A., De Wit, P. & Rafajlović, M., 2023 Feb, In: Evolutionary Applications. 16, 2, p. 486-503 18 p.Research output: Contribution to journal › Article › peer-review
Open Access -
Modelling the Evolution of Species’ Ranges
Eriksson, M., 2022 Oct 14, Borås: Stema Specialtryck AB.Research output: Thesis › Doctoral Thesis (compilation)
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The role of phenotypic plasticity in the establishment of range margins
Eriksson, M. & Rafajlović, M., 2022 Mar 14, In: Philosophical transactions of the Royal Society of London. Series B, Biological sciences. 377, 1846, 20210012.Research output: Contribution to journal › Article › peer-review
Open Access -
Time-Adaptive Determination of Drug Efficacy in Mathematical Model of HIV Infection
Beilina, L., Eriksson, M. & Gainova, I., 2021 Jun 1, In: Differential Equations and Dynamical Systems.Research output: Contribution to journal › Article › peer-review
Open Access
Projects
- 1 Finished
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Land-use induced eco-evolutionary response in pollinating insects: concerns for management of pollination services
Pontarp, M. (PI), Bacon, C. (CoPI), Brady, M. V. (CoPI), Persson, A. (CoI), Friberg, M. (CoI), Opedal, Ø. (CoI) & Eriksson, M. (Researcher)
2023/01/01 → 2025/12/31
Project: Research
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POSTER: Eco-evolutionary responses of pollinator-plant communities to the joint effects of land-use changes and climate change
Eriksson, M. (Presenter)
2024 May 16 → 2024 May 17Activity: Talk or presentation › Presentation
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Nordic Oikos 2024
Eriksson, M. (Session chair) & Pontarp, M. (Session chair)
2024 Mar 13Activity: Participating in or organising an event › Participation in conference
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BECC annual meeting 2023: Pushing the research frontier
Larsson, C. (Organiser), Abdi, H. (Organiser), Tagesson, T. (Organiser), Skovgaard, J. (Organiser), Bjorkman, A. D. (Organiser), Klein, A.-M. (Keynote/plenary speaker), Svenning, J.-C. (Keynote/plenary speaker), Pontarp, M. (Speaker), Eriksson, M. (Speaker), Edvardsson, J. (Speaker), Hickmann, T. (Speaker), Dwyer, C. (Speaker), Nicholas, K. (Speaker), Wagenaar, L. F. (Speaker), Clough, Y. (Speaker), Islar, M. (Speaker), Platakyte, R. (Speaker) & Weinbach, A. (Speaker)
2023 Nov 22 → 2023 Nov 24Activity: Participating in or organising an event › Organisation of conference