Linking photosynthetic performances with the changes in cover degree of three Mediterranean shrubs under climate manipulation
Author(s)
Liberati Dario
de Dato Giovanbattista
Guidolotti Gabriele
De Angelis Paolo
Date Issued
2018
Type
article
Volume
127
Issue
11
Start Page
1633
End Page
1645
Journal
Abstract
Understanding how different combinations of plant functional traits contribute to
species fitness is a question of considerable ecological interest, that can give insights
into the mechanisms controlling community assembly, and into the processes by
which climate change can modify plant community structure and composition.
We investigated the changes in cover degree of three shrubs (Cistus monspeliensis,
Dorycnium pentaphyllum and Helichrysum microphyllum) growing in a Mediterranean
garrigue subjected for 11 years to a reduced rainfall regime, following a conceptual
framework based on the two-phase resource dynamic model: considering the seasonal
drought typical of the Mediterranean climate, the two-phases were identified based on
high (pulse phase) and low (interpulse phase) soil water availability. We developed a
parameter proportional to the whole plant photosynthesis (plant photosynthetic index,
PPI), scaling up the leaf photosynthesis to canopy level, taking into account the different
canopy densities and the fluctuations in leaf biomass due to summer leaf shedding.
PPI was used to derive plant performance estimators for both pulse (maximum value
reached by PPI, PPImax) and interpulse phase (duration of the exhaustion phase, Durep,
when drought constrains PPI below the plant carbon compensation point determining
carbon starvation). For each species the ratio between PPImax and Durep (named PPIred)
was used as an index of plant performance. The reduced rainfall regime mainly
decreased the performances of the dominant species C. monspeliensis, both limiting
PPImax and extending Durep. Under both natural and the manipulated rainfall regime,
PPIred was proportional to plant success, measured as the cover degree variation rate of
the species. This result suggests that a mechanistic approach using functional traits to
quantify the different performance of co-occurring species can be used to investigate
1) the drivers of the medium-term changes in species abundance and 2) the processes
responsible for change in plant community composition under climate change.
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