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Paalsson, A.

Publications and source records attributed to Paalsson, A..

3 recordsLinked to original sources

Trait evolution linked to climatic shifts contributes to adaptive divergence in an alpine carnation (Dianthus sylvestris)

Populations expanding to new habitats may encounter novel selection regimes which can lead to ecotype formation. In the Alps, elevation corresponds to steep ecological gradients, along which ecotype formation has occurred in many species. The majority of alpine plant species are perennial and little is known about how selection acts across different stages of their life-cycles and how fitness trade-offs shape adaptive processes in perennials. We investigated how selection at opposite ends of elevational gradients has driven ecotype formation in Dianthus sylvestris, a perennial herb that expanded its ecological niche to low elevation habitats after the Last Glacial Maximum. Through a multi-year reciprocal transplant experiment including parental populations and recombinant crosses we assessed fitness under natural conditions and dissect how adaptation is mediated by different fitness components with inherent trade-offs, and pinpoint the contribution of growth and reproductive traits to this process. We show that the evolution of local adaptation proceeded by selection acting primarily through reproduction and survival at low and high elevation, respectively. At low elevation the primary contribution to adaptation was third year reproduction, concomitant with a left skewed age distribution. At high elevation the contribution to adaptation and the age distribution were more dispersed across the life cycle. We found that large, early flowering plants have a consistent fitness advantage. This was mediated by direct selection favoring large size through reproductive output at low elevation, and early flowering through the probability to produce seeds at high elevation. Our results indicate that the selection regime imposed by the warm low elevation habitat led to the evolution of an ecotype exhibiting a life-history strategy characterized by high investment in rapid growth and early reproduction. In contrast, the high elevation strategy favors high investment in self-maintenance. Our results suggest that weakening of a key fitness trade-off associated with resource allocation contributed to the evolution of distinct ecotypes in this perennial plant species.

evolutionary biology↗

Life history traits mediate elevational adaptation in a perennial alpine plant

O_LISpatially divergent natural selection drives adaptation to contrasting environments and the evolution of ecotypes. Understanding this process in perennial plants is challenging because natural selection acts on multiple life history traits linked by fitness trade-offs. C_LIO_LIIn a multi-year reciprocal transplant experiment of high and low elevation populations of the alpine carnation Dianthus carthusianorum in the Central Alps, we tested how different stages of the life cycle contribute to adaptation. Moreover, we used matrix population models to infer the specific contributions of individual life stages to fitness, coupled with trade-off analyses. C_LIO_LIWe found genotype x environment interactions consistent with elevational adaptation both in single fitness components linked to reproduction and survival, and in integrative fitness estimates. Adaptation at low elevation is driven by early reproduction, in contrast to an opposite strategy at high elevation. Adaptive life-history differences between populations originating from low and high elevations are mediated by environmental effects on plant growth and trade-offs between reproduction and survival. C_LIO_LIOur work reveals elevational ecotypes of the perennial alpine plant D. carthusianorum that express alternative life history strategies in response to climatic differences shaping resource allocation. C_LI

evolutionary biology↗

Unravelling drivers of local adaptation through Evolutionary Functional-Structural Plant modelling

O_LILocal adaptation to contrasting environmental conditions along environmental gradients is a widespread phenomenon in plant populations, yet we lack a mechanistic understanding of how individual agents of selection contribute to local adaptation. C_LIO_LIHere, we developed a novel evolutionary functional-structural plant (E-FSP) model that simulates local adaptation of virtual plants along an environmental gradient. First, we validate the model by testing if it can recreate two elevational ecotypes of Dianthus carthusianorum occurring in the Swiss Alps. Second, we use the E-FSP model to disentangle the relative contribution of abiotic (temperature) and biotic (competition and pollination) selection pressures to elevational adaptation in D. carthusianorum. C_LIO_LIThe model reproduced the qualitative differences between the elevational ecotypes in two phenological (germination and flowering time) and one morphological trait (stalk height), as well as qualitative differences in four performance variables that emerge from GxE interactions (flowering time, number of stalks, rosette area and seed production). Our results suggest that elevational adaptation in D. carthusianorum is predominantly driven by the abiotic environment. C_LIO_LIOur approach shows how E-FSP models incorporating physiological, ecological and evolutionary mechanisms can be used in combination with experiments to examine hypotheses about patterns of adaptation observed in the field. C_LI

evolutionary biology↗