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Valverde, J.

Publications and source records attributed to Valverde, J..

3 recordsLinked to original sources

Assessing the links between pollinators and the genetic and epigenetic features of plant species with contrasting distribution ranges

In flowering plants, pollinators contribute to gene flow while they also respond to variation in plant traits together determined by genetic, epigenetic and environmental sources of variation. Consequently, a correlation between abundance and diversity of pollinators and the genetic and epigenetic characteristics of plant populations such as diversity or distinctiveness is to be expected, yet no study has explored such long-term dimensions of plant-pollinator interactions. Mediterranean narrow endemics often exhibit unexpectedly high levels of population (epi)genetic diversity. We hypothesize that pollinators may contribute to explain this pattern. Specifically, we expect a stronger association of pollinators with population (epi)genetic variability in narrow endemics than in widely distributed congeners. We studied five pairs of congeneric plant species, consisting of one narrow endemic with a restricted distribution and one widespread congener, found in the Sierra de Cazorla mountains (SE Spain). In up to three populations per species, a comprehensive characterisation of pollinators was carried out to estimate pollinator diversity and visitation rate. Genetic and epigenetic diversity and distinctiveness of each population was calculated using AFLP markers and methylation-sensitive AFLP markers (MSAP) respectively. The relationships with pollinator diversity and visitation rate were assessed. The diversity of pollinators did not vary according to the plant distribution range, whereas visitation rate was higher in widespread species. As predicted, only narrow endemics showed a significant association between pollinators and their population genetic and epigenetic characteristics. Specifically, higher pollinator diversity and visitation rates entailed higher population genetic diversity and lower epigenetic distinctiveness. This work shows the value of exploring the relationships between pollinator abundance and diversity and population (epi)genetics for understanding the evolution of plant rarity.

ecology↗

Comparative epigenetic and genetic spatial structure in Mediterranean mountain plants: a multispecific comparison

AO_SCPLOWBSTRACTC_SCPLOWEpigenetic information can be heritable, but also respond to key environmental variables in situ, endowing individuals with an additional capacity to adapt to environmental changes. Thus, it is likely that in sesile organisms such as plants, part of the spatial epigenetic variation found across individuals will reflect the environmental heterogeneity of populations. Analysing the departure of the spatial epigenetic structure from the baseline genetic variation can help in understanding the value of epigenetic regulation in species with different breath of optimal environmental conditions. We performed a multispecies study that considered seven pairs of congeneric plant species, each encompassing a narrow endemic with habitat specialization and a widespread species. In three populations per species we used AFLP and methylation-sensitive AFLP markers to characterise the spatial genetic and epigenetic structures. In contrast to widespread species, narrow endemics showed a significant and generalised lower epigenetic than genetic differentiation across species. Within most populations of narrow species, epigenetic variation was less spatially structured than the genetic variation. This pattern resulted from a lack of correlation between epigenetic and genetic information in populations of narrow endemics. We argue that the differences found between narrow endemics and widespread congeners reflect contrasting breaths of environmental requirements. We pose the hypothesis that in species with a narrow niche breath, epigenetic variation may be more similar across populations and among individuals within a population given the expected higher similarity in environmental requirements.

genetics↗

Body mass decline in a Mediterranean community of solitary bees supports the size shrinking effect of climatic warming

The long-known, widely documented inverse relationship between body size and environmental temperature ("temperature-size rule") has recently led to predictions of body size decline following current climatic warming ("size shrinking effect"). For keystone pollinators such as wild bees, body shrinking in response to warming can have pervasive effects on pollination processes, but there is still little evidence of the phenomenon because adequate tests require controlling for climate-linked confounding factors (e.g., urbanization, land use change). This paper tests the shrinking effect in a diverse community of solitary bees from well-preserved habitats in the core of a large nature reserve undergoing fast climatic warming but not disturbances or habitat changes. Long-term variation in mean body mass was evaluated using data from 1,186 individual bees (108 species, 25 genera, 6 families) sampled over 1990-2022. Climate of the region warmed at a fast rate during this period and changes in bee body mass verified expectations from the size shrinking effect. Mean individual body mass of the regional community of solitary bees declined significantly, shrinking being particularly intense for female individuals and large-bodied species. As a consequence, the pollination and mating systems of many bee-pollinated plants in the region are likely undergoing important alterations.

ecology↗