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Dive into the research topics where Nikolaos M. Fyllas is active.

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Featured researches published by Nikolaos M. Fyllas.


New Phytologist | 2010

Drought–mortality relationships for tropical forests

Oliver L. Phillips; Geertje M.F. van der Heijden; Simon L. Lewis; Gabriela Lopez-Gonzalez; Luiz E. O. C. Aragão; Jon Lloyd; Yadvinder Malhi; Abel Monteagudo; Samuel Almeida; Esteban Álvarez Dávila; Iêda Leão do Amaral; Sandy Andelman; Ana Andrade; Luzmila Arroyo; Gerardo Aymard; Timothy R. Baker; Lilian Blanc; Damien Bonal; Atila Alves de Oliveira; Kuo-Jung Chao; Nallaret Dávila Cardozo; Lola Da Costa; Ted R. Feldpausch; Joshua B. Fisher; Nikolaos M. Fyllas; Maria Aparecida Freitas; David Galbraith; Emanuel Gloor; Niro Higuchi; Eurídice N. Honorio

*The rich ecology of tropical forests is intimately tied to their moisture status. Multi-site syntheses can provide a macro-scale view of these linkages and their susceptibility to changing climates. Here, we report pan-tropical and regional-scale analyses of tree vulnerability to drought. *We assembled available data on tropical forest tree stem mortality before, during, and after recent drought events, from 119 monitoring plots in 10 countries concentrated in Amazonia and Borneo. *In most sites, larger trees are disproportionately at risk. At least within Amazonia, low wood density trees are also at greater risk of drought-associated mortality, independent of size. For comparable drought intensities, trees in Borneo are more vulnerable than trees in the Amazon. There is some evidence for lagged impacts of drought, with mortality rates remaining elevated 2 yr after the meteorological event is over. *These findings indicate that repeated droughts would shift the functional composition of tropical forests toward smaller, denser-wooded trees. At very high drought intensities, the linear relationship between tree mortality and moisture stress apparently breaks down, suggesting the existence of moisture stress thresholds beyond which some tropical forests would suffer catastrophic tree mortality.


Philosophical Transactions of the Royal Society B | 2011

Variations in Amazon forest productivity correlated with foliar nutrients and modelled rates of photosynthetic carbon supply

Lina M. Mercado; S. Patiño; Tomas F. Domingues; Nikolaos M. Fyllas; Graham P. Weedon; Stephen Sitch; Carlos A. Quesada; Oliver L. Phillips; Luiz E. O. C. Aragão; Yadvinder Malhi; A. J. Dolman; Natalia Restrepo-Coupe; Scott R. Saleska; Timothy R. Baker; Samuel Almeida; Niro Higuchi; Jon Lloyd

The rate of above-ground woody biomass production, WP, in some western Amazon forests exceeds those in the east by a factor of 2 or more. Underlying causes may include climate, soil nutrient limitations and species composition. In this modelling paper, we explore the implications of allowing key nutrients such as N and P to constrain the photosynthesis of Amazon forests, and also we examine the relationship between modelled rates of photosynthesis and the observed gradients in WP. We use a model with current understanding of the underpinning biochemical processes as affected by nutrient availability to assess: (i) the degree to which observed spatial variations in foliar [N] and [P] across Amazonia affect stand-level photosynthesis; and (ii) how these variations in forest photosynthetic carbon acquisition relate to the observed geographical patterns of stem growth across the Amazon Basin. We find nutrient availability to exert a strong effect on photosynthetic carbon gain across the Basin and to be a likely important contributor to the observed gradient in WP. Phosphorus emerges as more important than nitrogen in accounting for the observed variations in productivity. Implications of these findings are discussed in the context of future tropical forests under a changing climate.


Plant Ecology & Diversity | 2013

On the delineation of tropical vegetation types with an emphasis on forest/savanna transitions

Mireia Torello-Raventos; Ted R. Feldpausch; Elmar M. Veenendaal; Franziska Schrodt; Gustavo Saiz; Tomas F. Domingues; Gloria Djagbletey; Andrew J. Ford; J.E. Kemp; Beatriz Schwantes Marimon; Ben Hur Marimon Junior; Eddie Lenza; J. A. Ratter; Leandro Maracahipes; Denise Sasaki; Bonaventure Sonké; Louis Zapfack; Hermann Taedoumg; Daniel Villarroel; Michael Schwarz; Carlos A. Quesada; F. Yoko Ishida; G. B. Nardoto; Kofi Affum-Baffoe; L. Arroyo; David M. J. S. Bowman; Halidou Compaore; Kalu J.E. Davies; Adama Diallo; Nikolaos M. Fyllas

Background: There is no generally agreed classification scheme for the many different vegetation formation types occurring in the tropics. This hinders cross-continental comparisons and causes confusion as words such as ‘forest’ and ‘savanna’ have different meanings to different people. Tropical vegetation formations are therefore usually imprecisely and/or ambiguously defined in modelling, remote sensing and ecological studies. Aims: To integrate observed variations in tropical vegetation structure and floristic composition into a single classification scheme. Methods: Using structural and floristic measurements made on three continents, discrete tropical vegetation groupings were defined on the basis of overstorey and understorey structure and species compositions by using clustering techniques. Results: Twelve structural groupings were identified based on height and canopy cover of the dominant upper stratum and the extent of lower-strata woody shrub cover and grass cover. Structural classifications did not, however, always agree with those based on floristic composition, especially for plots located in the forest–savanna transition zone. This duality is incorporated into a new tropical vegetation classification scheme. Conclusions: Both floristics and stand structure are important criteria for the meaningful delineation of tropical vegetation formations, especially in the forest/savanna transition zone. A new tropical vegetation classification scheme incorporating this information has been developed.


Biodiversity and Conservation | 2011

Grazing effects on plant functional group diversity in Mediterranean shrublands

Alexandra D. Papanikolaou; Nikolaos M. Fyllas; Antonios D. Mazaris; Panayiotis G. Dimitrakopoulos; Athanasios S. Kallimanis; John D. Pantis

Grazing is one of the prevalent human activities that even today are taking place inside protected areas with direct or indirect effects on ecosystems. In this study we analyzed the effects of grazing on plant species diversity, plant functional group (PFG) diversity and community composition of shrublands. We analyzed plant diversity data from 582 sampling plots located in 66 protected areas of the Greek Natura 2000 network, containing in total 1102 plant species and subspecies. We also classified a priori all plant species in seven PFGs: annual forbs, annual grasses/sedges, legumes, perennial forbs, perennial grasses/sedges, small shrubs and tall shrubs. For each site, grazing intensity was estimated in four classes (no grazing, low, medium and high grazing intensity). We found that, at the spatial and temporal scale of this study, as grazing intensity increased, so did total species richness. However, each PFG displayed a different response to grazing. Short-lived species (annual grasses or forbs and legumes) benefited from grazing and their species richness and proportion in the community increased with grazing. Perennial grasses and forbs species richness increased with grazing intensity, but their dominance decreased, since their proportion in the community declined. Short shrub species richness remained unaffected by grazing, while tall shrub diversity decreased. Finally, in sites without grazing the spatial pattern of species richness of the different PFGs was not congruent with each other, while in grazed sites they were significantly positively correlated (with the exception of tall shrubs). This finding may imply that grazing is a selective pressure organizing the community structure, and imposing a certain contribution of each PFG. So, in Mediterranean shrublands in protected areas with a long historical record of grazing, it seems that grazing promotes species diversity and its continuation on a portion of the landscape may be a necessary part of an effective management plan.


Amazonia and Global Change | 2013

Ecophysiology of forest and savanna vegetation

John Lloyd; Michael L. Goulden; J. P. Ometto; S. Patiño; Nikolaos M. Fyllas; Carlos A. Quesada

Ecophysiological characteristics of forest and savanna vegetation are compared in an attempt to understand how physiological differences within and between these vegetation types relate to their geographical distributions. A simple ordination first shows that although precipitation exerts a key effect on Amazonian vegetation distributions, soil characteristics are also important. In particular, it is found that under similar precipitation regimes, deciduous forests tend to occur on more fertile soils than do cerrado vegetation types. A high subsoil clay content is also important in allowing the existence of semievergreen forests at only moderate rainfall. Such observations are consistent with biome specific physiological characteristics. For example, deciduous trees have higher nutrient requirements than do evergreen ones which also tend to have characteristics associated with severe water deficits such as a low specific leaf area. Nutrient contents and photosynthetic rates are lower than for savanna than for forest species with several ecosystem characteristics suggesting a primary limitation of nitrogen on savanna productivity. By contrast, phosphorus seems to constrain the productivity of most Amazonian forest types. Differentiation is made between the fast-growing, high-nutrient-requiring forest types of western Amazonia and their counterparts in eastern Amazonia, which tend to occupy infertile but deeper soils of high water-holding ability. On the basis of observed physiological characteristics of the various vegetation forms, it is argued that, should Amazonian precipitation decline sharply in the future, the slower growing forests of eastern Amazonia will transform directly into an evergreen cerrado type vegetation but with the more fertile western Amazonian forests being replaced by some form of drought-deciduous vegetation.


Proceedings of the Royal Society B: Biological Sciences | 2016

Evolutionary heritage influences Amazon tree ecology

Fernanda Coelho de Souza; Kyle G. Dexter; Oliver L. Phillips; Roel J. W. Brienen; Jérôme Chave; David Galbraith; Gabriela Lopez Gonzalez; Abel Monteagudo Mendoza; R. Toby Pennington; Lourens Poorter; Miguel Alexiades; Esteban Álvarez-Dávila; Ana Andrade; Luis E. O. C. Aragão; Alejandro Araujo-Murakami; E.J.M.M. Arets; Gerardo A. Aymard C.; Christopher Baraloto; Jorcely Barroso; Damien Bonal; Rene G. A. Boot; José Luís C. Camargo; James A. Comiskey; Fernando Cornejo Valverde; Plínio Barbosa de Camargo; Anthony Di Fiore; Fernando Elias; Terry L. Erwin; Ted R. Feldpausch; Leandro V. Ferreira

Lineages tend to retain ecological characteristics of their ancestors through time. However, for some traits, selection during evolutionary history may have also played a role in determining trait values. To address the relative importance of these processes requires large-scale quantification of traits and evolutionary relationships among species. The Amazonian tree flora comprises a high diversity of angiosperm lineages and species with widely differing life-history characteristics, providing an excellent system to investigate the combined influences of evolutionary heritage and selection in determining trait variation. We used trait data related to the major axes of life-history variation among tropical trees (e.g. growth and mortality rates) from 577 inventory plots in closed-canopy forest, mapped onto a phylogenetic hypothesis spanning more than 300 genera including all major angiosperm clades to test for evolutionary constraints on traits. We found significant phylogenetic signal (PS) for all traits, consistent with evolutionarily related genera having more similar characteristics than expected by chance. Although there is also evidence for repeated evolution of pioneer and shade tolerant life-history strategies within independent lineages, the existence of significant PS allows clearer predictions of the links between evolutionary diversity, ecosystem function and the response of tropical forests to global change.


Functional Plant Biology | 2016

Separating species and environmental determinants of leaf functional traits in temperate rainforest plants along a soil-development chronosequence

Matthew H. Turnbull; Kevin L. Griffin; Nikolaos M. Fyllas; Jon Lloyd; Patrick Meir; Owen K. Atkin

We measured a diverse range of foliar characteristics in shrub and tree species in temperate rainforest communities along a soil chronosequence (six sites from 8 to 120000 years) and used multilevel model analysis to attribute the proportion of variance for each trait into genetic (G, here meaning species-level), environmental (E) and residual error components. We hypothesised that differences in leaf traits would be driven primarily by changes in soil nutrient availability during ecosystem progression and retrogression. Several leaf structural, chemical and gas-exchange traits were more strongly driven by G than E effects. For leaf mass per unit area (MA), foliar [N], net CO2 assimilation and dark respiration rates and foliar carbohydrate concentration, the G component accounted for 60-87% of the total variance, with the variability associated with plot, the E effect, much less important. Other traits, such as foliar [P] and N:P, displayed strong E and residual effects. Analyses revealed significant reductions in the slopes of G-only bivariate relationships when compared with raw relationships, indicating that a large proportion of trait-trait relationships is species based, and not a response to environment per se. This should be accounted for when assessing the mechanistic basis for using such relationships in order to make predictions of responses of plants to short-term environmental change.


Science of The Total Environment | 2017

Tree growth-climate relationships in a forest-plot network on Mediterranean mountains

Nikolaos M. Fyllas; Anastasia Christopoulou; Alexandros Galanidis; Chrysanthi Z. Michelaki; Panayiotis G. Dimitrakopoulos; Peter Z. Fulé; Margarita Arianoutsou

In this study we analysed a novel tree-growth dataset, inferred from annual ring-width measurements, of 7 forest tree species from 12 mountain regions in Greece, in order to identify tree growth - climate relationships. The tree species of interest were: Abies cephalonica, Abies borisii-regis, Picea abies, Pinus nigra, Pinus sylvestris, Fagus sylvatica and Quercus frainetto growing across a gradient of climate conditions with mean annual temperature ranging from 5.7 to 12.6°C and total annual precipitation from 500 to 950mm. In total, 344 tree cores (one per tree) were analysed across a network of 20 study sites. We found that water availability during the summer period (May-August) was a strong predictor of interannual variation in tree growth for all study species. Across species and sites, annual tree growth was positively related to summer season precipitation (PSP). The responsiveness of annual growth to PSP was tightly related to species and site specific measurements of instantaneous photosynthetic water use efficiency (WUE), suggesting that the growth of species with efficient water use is more responsive to variations in precipitation during the dry months of the year. Our findings support the importance of water availability for the growth of mountainous Mediterranean tree species and highlight that future reductions in precipitation are likely to lead to reduced tree-growth under climate change conditions.


Regional Environmental Change | 2017

Predicting species dominance shifts across elevation gradients in mountain forests in Greece under a warmer and drier climate

Nikolaos M. Fyllas; Anastasia Christopoulou; Alexandros Galanidis; Chrysanthi Z. Michelaki; Christos Giannakopoulos; Panayiotis G. Dimitrakopoulos; Margarita Arianoutsou; Manuel Gloor

The Mediterranean Basin is expected to face warmer and drier conditions in the future, following projected increases in temperature and declines in precipitation. The aim of this study is to explore how forests dominated by Abies borisii-regis, Abies cephalonica, Fagus sylvatica, Pinus nigra and Quercus frainetto will respond under such conditions. We combined an individual-based model (GREFOS), with a novel tree ring data set in order to constrain tree diameter growth and to account for inter- and intraspecific growth variability. We used wood density data to infer tree longevity, taking into account inter- and intraspecific variability. The model was applied at three 500-m-wide elevation gradients at Taygetos in Peloponnese, at Agrafa on Southern Pindos and at Valia Kalda on Northern Pindos in Greece. Simulations adequately represented species distribution and abundance across the elevation gradients under current climate. We subsequently used the model to estimate species and functional trait shifts under warmer and drier future conditions based on the IPCC A1B scenario. In all three sites, a retreat of less drought-tolerant species and an upward shift of more drought-tolerant species were simulated. These shifts were also associated with changes in two key functional traits, in particular maximum radial growth rate and wood density. Drought-tolerant species presented an increase in their average maximal growth and decrease in their average wood density, in contrast to less drought-tolerant species.


Ecosphere | 2017

Tropical forest light regimes in a human‐modified landscape

Sophie Fauset; Manuel U. Gloor; Marcos Pereira Marinho Aidar; Helber C. Freitas; Nikolaos M. Fyllas; Mauro A. Marabesi; André Luis Casarin Rochelle; Alexander Shenkin; Simone A. Vieira; Carlos Alfredo Joly

Abstract Light is the key energy input for all vegetated systems. Forest light regimes are complex, with the vertical pattern of light within canopies influenced by forest structure. Human disturbances in tropical forests impact forest structure and hence may influence the light environment and thus competitiveness of different trees. In this study, we measured vertical diffuse light profiles along a gradient of anthropogenic disturbance, sampling intact, logged, secondary, and fragmented sites in the biodiversity hot spot of the Atlantic forest, southeast Brazil, using photosynthetically active radiation sensors and a novel approach with estimations of vertical light profiles from hemispherical photographs. Our results show clear differences in vertical light profiles with disturbance: Fragmented forests are characterized by rapid light extinction within their low canopies, while the profiles in logged forests show high heterogeneity and high light in the mid‐canopy despite decades of recovery. The secondary forest showed similar light profiles to intact forest, but with a lower canopy height. We also show that in some cases the upper canopy layer and heavy liana infestations can severely limit light penetration. Light extinction with height above the ground and depth below the canopy top was highest in fragmented forest and negatively correlated with canopy height. The novel, inexpensive, and rapid methods described here can be applied to other sites to quantify rarely measured vertical light profiles.

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Carlos A. Quesada

Smithsonian Tropical Research Institute

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Jon Lloyd

Imperial College London

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Abel Monteagudo

Missouri Botanical Garden

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R. Paiva

National Council for Scientific and Technological Development

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