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Elevated Temperature Diminishes Reciprocal Selection in an Experimental Plant-Pollinator-Herbivore System
Quint Rusman1, Juan Traine1, Florian P Schiestl1
1Department of Systematic and Evolutionary Botany, University of Zürich, Zurich, Switzerland.
Ecology Letters
|January 13, 2025
Summary
Elevated temperatures weaken reciprocal selection between plants and butterflies. This finding suggests global warming may disrupt coevolutionary processes, impacting ecological interactions and biodiversity.
Area of Science:
- Ecology
- Evolutionary Biology
- Climate Change Science
Background:
- Coevolution is driven by reciprocal selection, where interacting species influence each other's evolution.
- Environmental factors, such as temperature, can alter the strength and direction of reciprocal selection.
- Understanding temperature's effects is crucial for predicting coevolutionary responses to global warming.
Purpose of the Study:
- To investigate the influence of elevated temperature on reciprocal selection between the plant Brassica rapa and its pollinator/herbivore Pieris rapae.
- To determine if temperature modifies the microevolutionary dynamics of this plant-insect interaction.
Main Methods:
- Experimental manipulation of temperature into ambient and hot conditions.
- Measurement of plant and butterfly phenotypes, interaction frequencies, and fitness components.
- Calculation of reciprocal selection gradients based on fitness data.
Main Results:
- Reciprocal selection was detected on multiple traits in the ambient temperature environment.
- No significant reciprocal selection was observed between Brassica rapa and Pieris rapae in the hot environment.
- Elevated temperatures demonstrably weakened the reciprocal selection observed under ambient conditions.
Conclusions:
- Experimental evidence indicates that increased temperatures reduce reciprocal selection.
- This weakening effect has significant implications for predicting the ecological and evolutionary consequences of global warming on interacting species.
- Coevolutionary processes may be altered or diminished under future climate scenarios.
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