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Environmental variability modulates trait matching, indirect effects, and resilience in adaptive mutualistic networks
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Environmental variability is ubiquitous, yet how its magnitude, temporal
autocorrelation, and synchrony across species shape the stability and
trajectories of eco-evolutionary dynamics in adaptive ecological
networks remain poorly understood. Here, we develop an adaptive
mutualistic network model to examine how different features of
environmental variability, together with ecologically mediated indirect
effects, jointly shape network resilience and patterns of trait
matching. Environmental variability generally reduces network resilience
while increasing both trait mismatching and trait heterogeneity.
Indirect effects enhance resilience and promote tighter trait matching
both among interacting species and between species and their environment
by stabilising abundance dynamics and indirectly constraining selection
pressures. These effects depend on network position: peripheral species
experience stronger indirect effects, leading to tighter between-species
trait matching but weaker alignment with environmental optima, whereas
core species experience weaker indirect effects, reduced interspecific
trait matching, but stronger alignment between species traits and
environmental optima. Increasing temporal autocorrelation and greater
variability amplitude further erode resilience and trait matching by
amplifying persistent environmental mismatches and suppressing indirect
stabilising pathways, whereas higher cross-species synchrony buffers
mutualistic networks by maintaining indirect effects. Together, our
results demonstrate that environmental variability reshapes
eco-evolutionary dynamics not only through direct environmental forcing,
but also by modulating indirect interaction pathways embedded in network
structure, highlighting the joint roles of indirect effects, topology,
and trait matching in determining adaptive mutualistic network
stability.
Title: Environmental variability modulates trait matching, indirect effects, and resilience in adaptive mutualistic networks
Description:
Environmental variability is ubiquitous, yet how its magnitude, temporal
autocorrelation, and synchrony across species shape the stability and
trajectories of eco-evolutionary dynamics in adaptive ecological
networks remain poorly understood.
Here, we develop an adaptive
mutualistic network model to examine how different features of
environmental variability, together with ecologically mediated indirect
effects, jointly shape network resilience and patterns of trait
matching.
Environmental variability generally reduces network resilience
while increasing both trait mismatching and trait heterogeneity.
Indirect effects enhance resilience and promote tighter trait matching
both among interacting species and between species and their environment
by stabilising abundance dynamics and indirectly constraining selection
pressures.
These effects depend on network position: peripheral species
experience stronger indirect effects, leading to tighter between-species
trait matching but weaker alignment with environmental optima, whereas
core species experience weaker indirect effects, reduced interspecific
trait matching, but stronger alignment between species traits and
environmental optima.
Increasing temporal autocorrelation and greater
variability amplitude further erode resilience and trait matching by
amplifying persistent environmental mismatches and suppressing indirect
stabilising pathways, whereas higher cross-species synchrony buffers
mutualistic networks by maintaining indirect effects.
Together, our
results demonstrate that environmental variability reshapes
eco-evolutionary dynamics not only through direct environmental forcing,
but also by modulating indirect interaction pathways embedded in network
structure, highlighting the joint roles of indirect effects, topology,
and trait matching in determining adaptive mutualistic network
stability.
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