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result(s) for
"Andriamahohatra, Lydou R."
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Bird’s nest fern epiphytes facilitate herpetofaunal arboreality and climate refuge in two paleotropic canopies
by
Scheffers, Brett R.
,
Andriamahohatra, Lydou R.
,
Basham, Edmund W.
in
Abundance
,
Amphibians
,
Animals
2020
In tropical forests, epiphytes increase habitat complexity and provision services rare to canopy environments, such as water retention, nutrient cycling, and microclimate refuge. These services facilitate species diversity and coexistence in terrestrial ecosystems, and while their utility in forest ecosystems is appreciated for the Bromeliaceae of the Neotropics, fewer studies have examined the role of Paleotropic epiphytes in ecological niche theory. Here, we compare herpetofaunal presence, abundance, and diversity of in bird’s nest fern (Asplenium nidus complex; BNF) to other microhabitats in Madagascar and the Philippines. We measure BNF fern microclimates, examine temporal use of canopy microhabitats, and test models of fern characteristics hypothesized to predict herpetofaunal use. In both countries, one in five BNFs were occupied by herpetofauna, mostly amphibians, and species using BNFs were highly dissimilar from those in other microhabitats. Herpetofaunal presence and abundance were greater in BNFs than in other canopy microhabitats and were most commonly used during the day when fern temperatures were highly buffered. Finally, BNF area was the best predictor of herpetofaunal presence and abundance, compared to canopy cover and BNF height. Importantly, these patterns remained consistent despite the distinct phylogenetic histories of our two communities (Asian versus African). Our results suggests that BNFs and their microclimate services play a critical role in the ecology of two Paleotropic forests, and facilitate the use of canopy habitats by climate-sensitive species. However, future studies are needed to assess the consistency of BNFs’ utility as a microclimate refuge across their large range.
Journal Article
Distance–decay differs among vertical strata in a tropical rainforest
by
Scheffers, Brett R.
,
Oliveira, Brunno F.
,
Andriamahohatra, Lydou R.
in
Abundance
,
amphibian
,
Amphibians
2019
Assemblage similarity decays with geographic distance—a pattern known as the distance–decay relationship. While this pattern has been investigated for a wide range of organisms, ecosystems and geographical gradients, whether these changes vary more cryptically across different forest strata (from ground to canopy) remains elusive. Here, we investigated the influence of ground vs. arboreal assemblages to the general distance–decay relationship observed in forests. We seek to explain differences in distance–decay relationships between strata in the context of the vertical stratification of assemblage composition, richness and abundance. We surveyed for a climate‐sensitive model organism, amphibians, across vertical rainforest strata in Madagascar. For each tree, we defined assemblages of ground‐dwelling, understory, or canopy species. We calculated horizontal distance–decay in similarity across all trees, and across assemblages of species found in different forest strata (ground, understory and canopy). We demonstrate that within stratum comparisons exhibit a classic distance–decay relationship for canopy and understory communities but no distance–decay relationships for ground communities. We suggest that differences in horizontal turnover between strata may be due to local scale habitat and resource heterogeneity in the canopy, or the influence of arboreal traits on species dispersal and distribution. Synthesis. Biodiversity patterns in horizontal space were not consistent across vertical space, suggesting that canopy fauna may not play by the same set of “rules” as their conspecifics living below them on the ground. Our study provides compelling evidence that the above‐ground amphibian assemblage of tropical rainforests is the primary driver of the classical distance–decay relationship. The above‐ground amphibian assemblage of tropical rainforests may be the primary driver of the classical distance–decay relationship.
Journal Article
Extreme thermal heterogeneity in structurally complex tropical rain forests
by
Macdonald, Stewart L.
,
Andriamahohatra, Lydou R.
,
Edwards, David P.
in
air temperature
,
ambient temperature
,
Anolis
2017
Most terrestrial species on Earth are ectothermic and track temperature at small spatial scales, from sun flecks to cool shaded spots. Current assessments of thermal heterogeneity in complex environments are predominately characterized by ambient temperature. This omission of solar radiation may lead to inaccurate conclusions regarding thermoregulation and distribution of species. We use thermal cameras to gather data on temperature heterogeneity in structurally complex rain forest environments. Using thermographic photographs, we capture the multidimensionality of climate created by vegetation by collecting over 76,000 temperature samples within approximately 1 m² quadrats. The method was tested against three standard methods that record air temperature to determine possible omissions in capturing thermal heterogeneity in four geographic locations—Colombia, Borneo, Madagascar, and Australia. Across all locations, there was greater thermal heterogeneity in surface temperature than captured from ambient temperature technologies. Spatial variability in surface temperature on 1 d was greater than temporal variability of ambient temperature across the entire month, with extreme deviation from ambient temperatures. Importantly, when compared to the lower bounds for optimal performance for five tropical Anolis species, this technology captured thermal regimes that support the thermoregulatory needs of these species, whereas ambient air temperature methods suggested that these species would be in thermal debt. Sampling surface temperature at high resolutions across space in combination with intensive sampling of ambient temperature and informed spatial modeling should improve our understanding of the distribution of ectothermic species living within thermally heterogeneous environments.
Journal Article