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Garcia-Robledo, C.

Publications and source records attributed to Garcia-Robledo, C..

2 recordsLinked to original sources

Heat tolerance of tropical herbaceous plants increases with elevation

Background and AimsTropical plants are assumed to be especially vulnerable to global warming because their physiologies are adapted to relatively constant temperatures throughout the year. Furthermore, it has been found that woody plants in colder high elevation environments are less tolerant to high temperatures than plants in the warmer lowlands. Here, we examined heat tolerance in a group of herbaceous plants with a wide elevational distribution in the tropics. MethodsThis study focused on 61 species from the order Zingiberales (ginger and banana-like plants) distributed from the lowlands (50 m asl) to lower montane forests (2000 m asl) along the Barva elevational gradient in Costa Rica. This study addressed the following questions: a) Does heat tolerance of Zingiberales species differ along the elevational gradient? b) Does heat tolerance vary along the elevational gradient within families of Zingiberales? c) Does heat tolerance vary along the elevational gradient within species for those with broad elevational distributions? To test if the temperature that causes damage to the function of photosystem II (PSII) in Zingiberales is associated with the temperatures prevalent at their elevation, we estimated heat tolerance (T50) of PSII using chlorophyll fluorescence techniques. Key ResultsIn contrast to the results found in tropical trees, our results showed that T50 is higher at higher elevations than in the lowlands for herbaceous plants species. This trend was observed across plant communities and families, and within most species with wide distributions along the elevational gradient. ConclusionsOur study suggests that herbs differ from trees in their elevational patterns in heat tolerance. We hypothesize that maximum and minimum leaf temperatures, and UV radiation may play a role in the observed pattern.

ecology↗

Integration of an invasive plant in hummingbird and flower mite networks is driven by ecological fitting and generalization

Most plant communities worldwide include exotic plants, which did not evolve with local organisms. The central goal of this study is to test if native organisms expanding to novel hosts are usually generalists or specialists. Here we studied new association between hummingbirds, flower mites and Musa velutina (Musaceae), an exotic plant native to Asia currently invading lowland forests in Costa Rica. Hummingbirds are pollinators, but flower mites feed on nectar without contributing to pollen transfer. Flower mites hitch rides on hummingbird beaks to colonize new flowers. To determine the original diet breadth of hummingbird and flower mite species, we assembled interaction networks including 33 native host plants, 14 hummingbird and 19 flower mite species. Transportation analyses show that flower mites colonization of native or exotic hosts is not constrained by hummingbird flight connections. We identified four hummingbird species visiting Musa velutina. DNA barcodes analyses identified only one species of flower mite colonizing flowers of M. velutina. All new associations with M. velutina involved generalist hummingbird and flower mite species. Musa velutina displays both male and female flowers. Although flowers of both sexes were equally visited by hummingbirds, mites were 15 times more abundant in male than in female flowers. This might be the result of constant immigration coupled with population growth. Only half of the mites hitching rides on hummingbird beaks emigrate to newly open flowers. Our results show that M. velutina integration to a plant community occurs mainly by establishing interactions with generalists.

ecology↗