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Author

Luzmila Arroyo

Other affiliations: Missouri Botanical Garden
Bio: Luzmila Arroyo is an academic researcher from Universidad Autónoma Gabriel René Moreno. The author has contributed to research in topics: Amazon rainforest & Species richness. The author has an hindex of 30, co-authored 50 publications receiving 9152 citations. Previous affiliations of Luzmila Arroyo include Missouri Botanical Garden.


Papers
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Journal ArticleDOI
06 Mar 2009-Science
TL;DR: Records from multiple long-term monitoring plots across Amazonia are used to assess forest responses to the intense 2005 drought, a possible analog of future events that may accelerate climate change through carbon losses and changed surface energy balances.
Abstract: Amazon forests are a key but poorly understood component of the global carbon cycle. If, as anticipated, they dry this century, they might accelerate climate change through carbon losses and changed surface energy balances. We used records from multiple long-term monitoring plots across Amazonia to assess forest responses to the intense 2005 drought, a possible analog of future events. Affected forest lost biomass, reversing a large long-term carbon sink, with the greatest impacts observed where the dry season was unusually intense. Relative to pre-2005 conditions, forest subjected to a 100-millimeter increase in water deficit lost 5.3 megagrams of aboveground biomass of carbon per hectare. The drought had a total biomass carbon impact of 1.2 to 1.6 petagrams (1.2 × 1015 to 1.6 × 1015 grams). Amazon forests therefore appear vulnerable to increasing moisture stress, with the potential for large carbon losses to exert feedback on climate change.

1,545 citations

Journal ArticleDOI
Hans ter Steege1, Hans ter Steege2, Nigel C. A. Pitman3, Daniel Sabatier4, Christopher Baraloto5, Rafael de Paiva Salomão6, Juan Ernesto Guevara7, Oliver L. Phillips8, Carolina V. Castilho9, William E. Magnusson10, Jean-François Molino4, Abel Monteagudo, Percy Núñez Vargas11, Juan Carlos Montero10, Ted R. Feldpausch8, Ted R. Feldpausch12, Eurídice N. Honorio Coronado8, Timothy J. Killeen13, Bonifacio Mostacedo14, Rodolfo Vasquez, Rafael L. Assis15, Rafael L. Assis10, John Terborgh3, Florian Wittmann16, Ana Andrade10, William F. Laurance17, Susan G. Laurance17, Beatriz Schwantes Marimon18, Ben Hur Marimon18, Ima Célia Guimarães Vieira6, Iêda Leão do Amaral10, Roel J. W. Brienen8, Hernán Castellanos, Dairon Cárdenas López, Joost F. Duivenvoorden19, Hugo Mogollón20, Francisca Dionízia de Almeida Matos10, Nállarett Dávila21, Roosevelt García-Villacorta22, Pablo Roberto Stevenson Diaz23, Flávia R. C. Costa10, Thaise Emilio10, Carolina Levis10, Juliana Schietti10, Priscila Souza10, Alfonso Alonso24, Francisco Dallmeier24, Álvaro Javier Duque Montoya25, Maria Teresa Fernandez Piedade10, Alejandro Araujo-Murakami, Luzmila Arroyo, Rogério Gribel, Paul V. A. Fine7, Carlos A. Peres26, Marisol Toledo14, A C Gerardo Aymard, Timothy R. Baker8, Carlos Cerón27, Julien Engel28, Terry W. Henkel29, Paul J. M. Maas2, Pascal Petronelli, Juliana Stropp, Charles E. Zartman10, Doug Daly30, David A. Neill, Marcos Silveira31, Marcos Ríos Paredes, Jérôme Chave32, Diogenes de Andrade Lima Filho10, Peter M. Jørgensen33, Alfredo F. Fuentes33, Jochen Schöngart16, Fernando Cornejo Valverde34, Anthony Di Fiore35, E. M. Jimenez25, Maria Cristina Peñuela Mora25, Juan Fernando Phillips, Gonzalo Rivas36, Tinde van Andel2, Patricio von Hildebrand, Bruce Hoffman2, Egleé L. Zent37, Yadvinder Malhi38, Adriana Prieto25, Agustín Rudas25, Ademir R. Ruschell9, Natalino Silva39, Vincent A. Vos, Stanford Zent37, Alexandre Adalardo de Oliveira40, Angela Cano Schutz23, Therany Gonzales34, Marcelo Trindade Nascimento41, Hirma Ramírez-Angulo23, Rodrigo Sierra, Milton Tirado, Maria Natalia Umaña Medina23, Geertje M. F. van der Heijden42, Geertje M. F. van der Heijden43, César I.A. Vela11, Emilio Vilanova Torre23, Corine Vriesendorp, Ophelia Wang44, Kenneth R. Young35, Cláudia Baider40, Henrik Balslev45, Cid Ferreira10, Italo Mesones7, Armando Torres-Lezama23, Ligia Estela Urrego Giraldo25, Roderick Zagt46, Miguel Alexiades47, Lionel Hernández, Isau Huamantupa-Chuquimaco, William Milliken48, Walter Palacios Cuenca, Daniela Pauletto, Elvis H. Valderrama Sandoval49, Elvis H. Valderrama Sandoval50, Luis Valenzuela Gamarra, Kyle G. Dexter22, Kenneth J. Feeley51, Kenneth J. Feeley52, Gabriela Lopez-Gonzalez8, Miles R. Silman53 
Utrecht University1, Naturalis2, Duke University3, Institut de recherche pour le développement4, Institut national de la recherche agronomique5, Museu Paraense Emílio Goeldi6, University of California, Berkeley7, University of Leeds8, Empresa Brasileira de Pesquisa Agropecuária9, National Institute of Amazonian Research10, National University of Saint Anthony the Abbot in Cuzco11, University of Exeter12, World Wide Fund for Nature13, Universidad Autónoma Gabriel René Moreno14, Norwegian University of Life Sciences15, Max Planck Society16, James Cook University17, Universidade do Estado de Mato Grosso18, University of Amsterdam19, Silver Spring Networks20, State University of Campinas21, University of Edinburgh22, University of Los Andes23, Smithsonian Conservation Biology Institute24, National University of Colombia25, University of East Anglia26, Central University of Ecuador27, Centre national de la recherche scientifique28, Humboldt State University29, New York Botanical Garden30, Universidade Federal do Acre31, Paul Sabatier University32, Missouri Botanical Garden33, Amazon.com34, University of Texas at Austin35, University of Florida36, Venezuelan Institute for Scientific Research37, Environmental Change Institute38, Federal Rural University of Amazonia39, University of São Paulo40, State University of Norte Fluminense41, University of Wisconsin–Milwaukee42, Smithsonian Tropical Research Institute43, Northern Arizona University44, Aarhus University45, Tropenbos International46, University of Kent47, Royal Botanic Gardens48, Universidad Nacional de la Amazonía Peruana49, University of Missouri–St. Louis50, Florida International University51, Fairchild Tropical Botanic Garden52, Wake Forest University53
18 Oct 2013-Science
TL;DR: The finding that Amazonia is dominated by just 227 tree species implies that most biogeochemical cycling in the world’s largest tropical forest is performed by a tiny sliver of its diversity.
Abstract: The vast extent of the Amazon Basin has historically restricted the study of its tree communities to the local and regional scales. Here, we provide empirical data on the commonness, rarity, and richness of lowland tree species across the entire Amazon Basin and Guiana Shield (Amazonia), collected in 1170 tree plots in all major forest types. Extrapolations suggest that Amazonia harbors roughly 16,000 tree species, of which just 227 (1.4%) account for half of all trees. Most of these are habitat specialists and only dominant in one or two regions of the basin. We discuss some implications of the finding that a small group of species—less diverse than the North American tree flora—accounts for half of the world’s most diverse tree community.

963 citations

Journal ArticleDOI
13 Sep 2012-Nature
TL;DR: These findings suggest that tropical protected areas are often intimately linked ecologically to their surrounding habitats, and that a failure to stem broad-scale loss and degradation of such habitats could sharply increase the likelihood of serious biodiversity declines.
Abstract: The rapid disruption of tropical forests probably imperils global biodiversity more than any other contemporary phenomenon(1-3). With deforestation advancing quickly, protected areas are increasingly becoming final refuges for threatened species and natural ecosystem processes. However, many protected areas in the tropics are themselves vulnerable to human encroachment and other environmental stresses(4-9). As pressures mount, it is vital to know whether existing reserves can sustain their biodiversity. A critical constraint in addressing this question has been that data describing a broad array of biodiversity groups have been unavailable for a sufficiently large and representative sample of reserves. Here we present a uniquely comprehensive data set on changes over the past 20 to 30 years in 31 functional groups of species and 21 potential drivers of environmental change, for 60 protected areas stratified across the world's major tropical regions. Our analysis reveals great variation in reserve 'health': about half of all reserves have been effective or performed passably, but the rest are experiencing an erosion of biodiversity that is often alarmingly widespread taxonomically and functionally. Habitat disruption, hunting and forest-product exploitation were the strongest predictors of declining reserve health. Crucially, environmental changes immediately outside reserves seemed nearly as important as those inside in determining their ecological fate, with changes inside reserves strongly mirroring those occurring around them. These findings suggest that tropical protected areas are often intimately linked ecologically to their surrounding habitats, and that a failure to stem broad-scale loss and degradation of such habitats could sharply increase the likelihood of serious biodiversity declines.

962 citations

Journal ArticleDOI
Roel J. W. Brienen1, Oliver L. Phillips1, Ted R. Feldpausch1, Ted R. Feldpausch2, Emanuel Gloor1, Timothy R. Baker1, Jon Lloyd3, Jon Lloyd4, Gabriela Lopez-Gonzalez1, Abel Monteagudo-Mendoza, Yadvinder Malhi5, Simon L. Lewis1, Simon L. Lewis6, R. Vásquez Martínez, Miguel Alexiades7, E. Alvarez Dávila, Patricia Alvarez-Loayza8, Ana Andrade9, Luiz E. O. C. Aragão2, Luiz E. O. C. Aragão10, Alejandro Araujo-Murakami11, Eric Arets12, Luzmila Arroyo11, Olaf Bánki13, Christopher Baraloto14, Christopher Baraloto15, Jorcely Barroso16, Damien Bonal15, René G. A. Boot17, José Luís Camargo9, Carolina V. Castilho18, V. Chama, Kuo-Jung Chao19, Kuo-Jung Chao1, Jérôme Chave20, James A. Comiskey21, F. Cornejo Valverde22, L da Costa23, E. A. de Oliveira24, A. Di Fiore25, Terry L. Erwin26, Sophie Fauset1, Mônica Forsthofer24, David W. Galbraith1, E S Grahame1, Nikée Groot1, Bruno Hérault, Niro Higuchi9, E.N. Honorio Coronado1, E.N. Honorio Coronado22, Helen C. Keeling1, Timothy J. Killeen27, William F. Laurance4, Susan G. Laurance4, Juan Carlos Licona, W E Magnussen, Beatriz Schwantes Marimon24, Ben Hur Marimon-Junior24, Casimiro Mendoza28, David A. Neill, Euler Melo Nogueira, Pablo Núñez, N. C. Pallqui Camacho, Alexander Parada11, G. Pardo-Molina, Julie Peacock1, Marielos Peña-Claros12, Georgia Pickavance1, Nigel C. A. Pitman29, Nigel C. A. Pitman8, Lourens Poorter12, Adriana Prieto30, Carlos A. Quesada, Fredy Ramírez30, Hirma Ramírez-Angulo31, Zorayda Restrepo, Anand Roopsind, Agustín Rudas32, Rafael de Paiva Salomão33, Michael P. Schwarz1, Natalino Silva, Javier E. Silva-Espejo, Marcos Silveira16, Juliana Stropp, Joey Talbot1, H. ter Steege34, H. ter Steege35, J Teran-Aguilar, John Terborgh8, Raquel Thomas-Caesar, Marisol Toledo, Mireia Torello-Raventos4, Ricardo Keichi Umetsu24, G. M. F. van der Heijden36, G. M. F. van der Heijden37, G. M. F. van der Heijden38, P. van der Hout, I. C. Guimarães Vieira33, Simone Aparecida Vieira39, Emilio Vilanova31, Vincent A. Vos, Roderick Zagt17 
19 Mar 2015-Nature
TL;DR: It is confirmed that Amazon forests have acted as a long-term net biomass sink, but the observed decline of the Amazon sink diverges markedly from the recent increase in terrestrial carbon uptake at the global scale, and is contrary to expectations based on models
Abstract: Atmospheric carbon dioxide records indicate that the land surface has acted as a strong global carbon sink over recent decades, with a substantial fraction of this sink probably located in the tropics, particularly in the Amazon. Nevertheless, it is unclear how the terrestrial carbon sink will evolve as climate and atmospheric composition continue to change. Here we analyse the historical evolution of the biomass dynamics of the Amazon rainforest over three decades using a distributed network of 321 plots. While this analysis confirms that Amazon forests have acted as a long-term net biomass sink, we find a long-term decreasing trend of carbon accumulation. Rates of net increase in above-ground biomass declined by one-third during the past decade compared to the 1990s. This is a consequence of growth rate increases levelling off recently, while biomass mortality persistently increased throughout, leading to a shortening of carbon residence times. Potential drivers for the mortality increase include greater climate variability, and feedbacks of faster growth on mortality, resulting in shortened tree longevity. The observed decline of the Amazon sink diverges markedly from the recent increase in terrestrial carbon uptake at the global scale, and is contrary to expectations based on models.

767 citations

Journal ArticleDOI
TL;DR: In this article, the relative roles of species composition (wood specific gravity) and forest structure (basal area) in determining variation in aboveground biomass (AGB) of trees greater than 10cm diameter within Amazonia have been compared.
Abstract: Uncertainty in biomass estimates is one of the greatest limitations to models of carbon flux in tropical forests. Previous comparisons of field-based estimates of the aboveground biomass (AGB) of trees greater than 10cm diameter within Amazonia have been limited by the paucity of data for western Amazon forests, and the use of site-specific methods to estimate biomass from inventory data. In addition, the role of regional variation in stand-level wood specific gravity has not previously been considered. Using data from 56 mature forest plots across Amazonia, we consider the relative roles of species composition (wood specific gravity) and forest structure (basal area) in determining variation in AGB. Mean stand-level wood specific gravity, on a per stem basis, is 15.8% higher in forests in central and eastern, compared with northwestern Amazonia. This pattern is due to the higher diversity and abundance of taxa with high specific gravity values in central and eastern Amazonia, and the greater diversity and abundance of taxa with low specific gravity values in western Amazonia. For two estimates of AGB derived using different allometric equations, basal area explains 51.7% and 63.4%, and stand-level specific gravity 45.4% and 29.7%, of the total variation in AGB. The variation in specific gravity is important because it determines the regional scale, spatial pattern of AGB. When weighting by specific gravity is included, central and eastern Amazon forests have significantly higher AGB than stands in northwest or southwest Amazonia. The regional-scale pattern of species composition therefore defines a broad gradient of AGB across Amazonia.

754 citations


Cited by
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28 Jul 2005
TL;DR: PfPMP1)与感染红细胞、树突状组胞以及胎盘的单个或多个受体作用,在黏附及免疫逃避中起关键的作�ly.
Abstract: 抗原变异可使得多种致病微生物易于逃避宿主免疫应答。表达在感染红细胞表面的恶性疟原虫红细胞表面蛋白1(PfPMP1)与感染红细胞、内皮细胞、树突状细胞以及胎盘的单个或多个受体作用,在黏附及免疫逃避中起关键的作用。每个单倍体基因组var基因家族编码约60种成员,通过启动转录不同的var基因变异体为抗原变异提供了分子基础。

18,940 citations

Journal ArticleDOI
TL;DR: Preface to the Princeton Landmarks in Biology Edition vii Preface xi Symbols used xiii 1.
Abstract: Preface to the Princeton Landmarks in Biology Edition vii Preface xi Symbols Used xiii 1. The Importance of Islands 3 2. Area and Number of Speicies 8 3. Further Explanations of the Area-Diversity Pattern 19 4. The Strategy of Colonization 68 5. Invasibility and the Variable Niche 94 6. Stepping Stones and Biotic Exchange 123 7. Evolutionary Changes Following Colonization 145 8. Prospect 181 Glossary 185 References 193 Index 201

14,171 citations

Journal ArticleDOI
TL;DR: In this paper, the authors present the first global assessment of recent tree mortality attributed to drought and heat stress and identify key information gaps and scientific uncertainties that currently hinder our ability to predict tree mortality in response to climate change and emphasizes the need for a globally coordinated observation system.

5,811 citations

Journal ArticleDOI
19 Aug 2011-Science
TL;DR: The total forest sink estimate is equivalent in magnitude to the terrestrial sink deduced from fossil fuel emissions and land-use change sources minus ocean and atmospheric sinks, with tropical estimates having the largest uncertainties.
Abstract: The terrestrial carbon sink has been large in recent decades, but its size and location remain uncertain. Using forest inventory data and long-term ecosystem carbon studies, we estimate a total forest sink of 2.4 ± 0.4 petagrams of carbon per year (Pg C year–1) globally for 1990 to 2007. We also estimate a source of 1.3 ± 0.7 Pg C year–1 from tropical land-use change, consisting of a gross tropical deforestation emission of 2.9 ± 0.5 Pg C year–1 partially compensated by a carbon sink in tropical forest regrowth of 1.6 ± 0.5 Pg C year–1. Together, the fluxes comprise a net global forest sink of 1.1 ± 0.8 Pg C year–1, with tropical estimates having the largest uncertainties. Our total forest sink estimate is equivalent in magnitude to the terrestrial sink deduced from fossil fuel emissions and land-use change sources minus ocean and atmospheric sinks.

4,948 citations