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ASYMMETRICAL DEVELOPMENTAL PLASTICITY IN AN INTERTIDAL SNAIL
1Museum of Comparative Zoology, Harvard University, Cambridge, MA, 02138.
Summary
The intertidal snail Nucella lapillus exhibits phenotypic plasticity in pedal surface area, adapting to wave energy. This adaptation is crucial for resisting dislodgement in high-energy environments.
Area of Science:
- Marine Biology
- Ecology
- Evolutionary Biology
Background:
- Intertidal organisms face environmental challenges, including wave action.
- Phenotypic plasticity allows organisms to adjust traits in response to environmental changes.
- The adhesive abilities of intertidal snails are critical for survival.
Purpose of the Study:
- To investigate variation and phenotypic plasticity in the adhesive abilities of Nucella lapillus.
- To determine the role of pedal surface area in resisting dislodgement in different wave-energy environments.
- To explore the underlying mechanisms of adaptation to wave action in intertidal snails.
Main Methods:
- Field and laboratory experiments were conducted.
- Measurements of pedal surface area and dislodgement resistance were taken.
- Reciprocal-transplant experiments were performed to assess plasticity.
Main Results:
- Snails from high-wave-energy environments had larger pedal surface areas and greater resistance to dislodgement.
- Pedal surface area variation was due to phenotypic plasticity, not genetic differentiation.
- Transplant experiments revealed asymmetric plasticity in response to wave action intensity.
Conclusions:
- Pedal surface area in Nucella lapillus is a plastic trait influenced by water turbulence.
- The snail's adaptation to wave action is asymmetric, potentially reflecting differential acclimation risks.
- Phenotypic plasticity is a key mechanism for intertidal organisms to cope with environmental variability.
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