Literature DB >> 33446809

Large-scale variations in the dynamics of Amazon forest canopy gaps from airborne lidar data and opportunities for tree mortality estimates.

Ricardo Dalagnol1, Fabien H Wagner2,3, Lênio S Galvão2, Annia S Streher2, Oliver L Phillips4, Emanuel Gloor4, Thomas A M Pugh5,6, Jean P H B Ometto7, Luiz E O C Aragão2,8.   

Abstract

We report large-scale estimates of Amazonian gap dynamics using a novel approach with large datasets of airborne light detection and ranging (lidar), including five multi-temporal and 610 single-date lidar datasets. Specifically, we (1) compared the fixed height and relative height methods for gap delineation and established a relationship between static and dynamic gaps (newly created gaps); (2) explored potential environmental/climate drivers explaining gap occurrence using generalized linear models; and (3) cross-related our findings to mortality estimates from 181 field plots. Our findings suggest that static gaps are significantly correlated to dynamic gaps and can inform about structural changes in the forest canopy. Moreover, the relative height outperformed the fixed height method for gap delineation. Well-defined and consistent spatial patterns of dynamic gaps were found over the Amazon, while also revealing the dynamics of areas never sampled in the field. The predominant pattern indicates 20-35% higher gap dynamics at the west and southeast than at the central-east and north. These estimates were notably consistent with field mortality patterns, but they showed 60% lower magnitude likely due to the predominant detection of the broken/uprooted mode of death. While topographic predictors did not explain gap occurrence, the water deficit, soil fertility, forest flooding and degradation were key drivers of gap variability at the regional scale. These findings highlight the importance of lidar in providing opportunities for large-scale gap dynamics and tree mortality monitoring over the Amazon.

Entities:  

Year:  2021        PMID: 33446809      PMCID: PMC7809196          DOI: 10.1038/s41598-020-80809-w

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  18 in total

1.  Drought sensitivity of the Amazon rainforest.

Authors:  Oliver L Phillips; Luiz E O C Aragão; Simon L Lewis; Joshua B Fisher; Jon Lloyd; Gabriela López-González; Yadvinder Malhi; Abel Monteagudo; Julie Peacock; Carlos A Quesada; Geertje van der Heijden; Samuel Almeida; Iêda Amaral; Luzmila Arroyo; Gerardo Aymard; Tim R Baker; Olaf Bánki; Lilian Blanc; Damien Bonal; Paulo Brando; Jerome Chave; Atila Cristina Alves de Oliveira; Nallaret Dávila Cardozo; Claudia I Czimczik; Ted R Feldpausch; Maria Aparecida Freitas; Emanuel Gloor; Niro Higuchi; Eliana Jiménez; Gareth Lloyd; Patrick Meir; Casimiro Mendoza; Alexandra Morel; David A Neill; Daniel Nepstad; Sandra Patiño; Maria Cristina Peñuela; Adriana Prieto; Fredy Ramírez; Michael Schwarz; Javier Silva; Marcos Silveira; Anne Sota Thomas; Hans Ter Steege; Juliana Stropp; Rodolfo Vásquez; Przemyslaw Zelazowski; Esteban Alvarez Dávila; Sandy Andelman; Ana Andrade; Kuo-Jung Chao; Terry Erwin; Anthony Di Fiore; Eurídice Honorio C; Helen Keeling; Tim J Killeen; William F Laurance; Antonio Peña Cruz; Nigel C A Pitman; Percy Núñez Vargas; Hirma Ramírez-Angulo; Agustín Rudas; Rafael Salamão; Natalino Silva; John Terborgh; Armando Torres-Lezama
Journal:  Science       Date:  2009-03-06       Impact factor: 47.728

2.  Landscape-scale consequences of differential tree mortality from catastrophic wind disturbance in the Amazon.

Authors:  Sami W Rifai; José D Urquiza Muñoz; Robinson I Negrón-Juárez; Fredy R Ramírez Arévalo; Rodil Tello-Espinoza; Mark C Vanderwel; Jeremy W Lichstein; Jeffrey Q Chambers; Stephanie A Bohlman
Journal:  Ecol Appl       Date:  2016-09-21       Impact factor: 4.657

3.  The steady-state mosaic of disturbance and succession across an old-growth Central Amazon forest landscape.

Authors:  Jeffrey Q Chambers; Robinson I Negron-Juarez; Daniel Magnabosco Marra; Alan Di Vittorio; Joerg Tews; Dar Roberts; Gabriel H P M Ribeiro; Susan E Trumbore; Niro Higuchi
Journal:  Proc Natl Acad Sci U S A       Date:  2013-01-28       Impact factor: 11.205

4.  Spatial scale and sampling resolution affect measures of gap disturbance in a lowland tropical forest: implications for understanding forest regeneration and carbon storage.

Authors:  Elena Lobo; James W Dalling
Journal:  Proc Biol Sci       Date:  2014-01-22       Impact factor: 5.349

5.  Lightning is a major cause of large tree mortality in a lowland neotropical forest.

Authors:  Stephen P Yanoviak; Evan M Gora; Phillip M Bitzer; Jeffrey C Burchfield; Helene C Muller-Landau; Matteo Detto; Steven Paton; Stephen P Hubbell
Journal:  New Phytol       Date:  2019-11-18       Impact factor: 10.151

6.  Structural Dynamics of Tropical Moist Forest Gaps.

Authors:  Maria O Hunter; Michael Keller; Douglas Morton; Bruce Cook; Michael Lefsky; Mark Ducey; Scott Saleska; Raimundo Cosme de Oliveira; Juliana Schietti
Journal:  PLoS One       Date:  2015-07-13       Impact factor: 3.240

7.  TerraClimate, a high-resolution global dataset of monthly climate and climatic water balance from 1958-2015.

Authors:  John T Abatzoglou; Solomon Z Dobrowski; Sean A Parks; Katherine C Hegewisch
Journal:  Sci Data       Date:  2018-01-09       Impact factor: 6.444

8.  Evaluating spatial coverage of data on the aboveground biomass in undisturbed forests in the Brazilian Amazon.

Authors:  Graciela Tejada; Eric Bastos Görgens; Fernando Del Bon Espírito-Santo; Roberta Zecchini Cantinho; Jean Pierre Ometto
Journal:  Carbon Balance Manag       Date:  2019-09-03

9.  Variation in stem mortality rates determines patterns of above-ground biomass in Amazonian forests: implications for dynamic global vegetation models.

Authors:  Michelle O Johnson; David Galbraith; Manuel Gloor; Hannes De Deurwaerder; Matthieu Guimberteau; Anja Rammig; Kirsten Thonicke; Hans Verbeeck; Celso von Randow; Abel Monteagudo; Oliver L Phillips; Roel J W Brienen; Ted R Feldpausch; Gabriela Lopez Gonzalez; Sophie Fauset; Carlos A Quesada; Bradley Christoffersen; Philippe Ciais; Gilvan Sampaio; Bart Kruijt; Patrick Meir; Paul Moorcroft; Ke Zhang; Esteban Alvarez-Davila; Atila Alves de Oliveira; Ieda Amaral; Ana Andrade; Luiz E O C Aragao; Alejandro Araujo-Murakami; Eric J M M Arets; Luzmila Arroyo; Gerardo A Aymard; Christopher Baraloto; Jocely Barroso; Damien Bonal; Rene Boot; Jose Camargo; Jerome Chave; Alvaro Cogollo; Fernando Cornejo Valverde; Antonio C Lola da Costa; Anthony Di Fiore; Leandro Ferreira; Niro Higuchi; Euridice N Honorio; Tim J Killeen; Susan G Laurance; William F Laurance; Juan Licona; Thomas Lovejoy; Yadvinder Malhi; Bia Marimon; Ben Hur Marimon; Darley C L Matos; Casimiro Mendoza; David A Neill; Guido Pardo; Marielos Peña-Claros; Nigel C A Pitman; Lourens Poorter; Adriana Prieto; Hirma Ramirez-Angulo; Anand Roopsind; Agustin Rudas; Rafael P Salomao; Marcos Silveira; Juliana Stropp; Hans Ter Steege; John Terborgh; Raquel Thomas; Marisol Toledo; Armando Torres-Lezama; Geertje M F van der Heijden; Rodolfo Vasquez; Ima Cèlia Guimarães Vieira; Emilio Vilanova; Vincent A Vos; Timothy R Baker
Journal:  Glob Chang Biol       Date:  2016-05-19       Impact factor: 10.863

10.  Tree mode of death and mortality risk factors across Amazon forests.

Authors:  Adriane Esquivel-Muelbert; Oliver L Phillips; Roel J W Brienen; Sophie Fauset; Martin J P Sullivan; Timothy R Baker; Kuo-Jung Chao; Ted R Feldpausch; Emanuel Gloor; Niro Higuchi; Jeanne Houwing-Duistermaat; Jon Lloyd; Haiyan Liu; Yadvinder Malhi; Beatriz Marimon; Ben Hur Marimon Junior; Abel Monteagudo-Mendoza; Lourens Poorter; Marcos Silveira; Emilio Vilanova Torre; Esteban Alvarez Dávila; Jhon Del Aguila Pasquel; Everton Almeida; Patricia Alvarez Loayza; Ana Andrade; Luiz E O C Aragão; Alejandro Araujo-Murakami; Eric Arets; Luzmila Arroyo; Gerardo A Aymard C; Michel Baisie; Christopher Baraloto; Plínio Barbosa Camargo; Jorcely Barroso; Lilian Blanc; Damien Bonal; Frans Bongers; René Boot; Foster Brown; Benoit Burban; José Luís Camargo; Wendeson Castro; Victor Chama Moscoso; Jerome Chave; James Comiskey; Fernando Cornejo Valverde; Antonio Lola da Costa; Nallaret Davila Cardozo; Anthony Di Fiore; Aurélie Dourdain; Terry Erwin; Gerardo Flores Llampazo; Ima Célia Guimarães Vieira; Rafael Herrera; Eurídice Honorio Coronado; Isau Huamantupa-Chuquimaco; Eliana Jimenez-Rojas; Timothy Killeen; Susan Laurance; William Laurance; Aurora Levesley; Simon L Lewis; Karina Liana Lisboa Melgaço Ladvocat; Gabriela Lopez-Gonzalez; Thomas Lovejoy; Patrick Meir; Casimiro Mendoza; Paulo Morandi; David Neill; Adriano José Nogueira Lima; Percy Nuñez Vargas; Edmar Almeida de Oliveira; Nadir Pallqui Camacho; Guido Pardo; Julie Peacock; Marielos Peña-Claros; Maria Cristina Peñuela-Mora; Georgia Pickavance; John Pipoly; Nigel Pitman; Adriana Prieto; Thomas A M Pugh; Carlos Quesada; Hirma Ramirez-Angulo; Simone Matias de Almeida Reis; Maxime Rejou-Machain; Zorayda Restrepo Correa; Lily Rodriguez Bayona; Agustín Rudas; Rafael Salomão; Julio Serrano; Javier Silva Espejo; Natalino Silva; James Singh; Clement Stahl; Juliana Stropp; Varun Swamy; Joey Talbot; Hans Ter Steege; John Terborgh; Raquel Thomas; Marisol Toledo; Armando Torres-Lezama; Luis Valenzuela Gamarra; Geertje van der Heijden; Peter van der Meer; Peter van der Hout; Rodolfo Vasquez Martinez; Simone Aparecida Vieira; Jeanneth Villalobos Cayo; Vincent Vos; Roderick Zagt; Pieter Zuidema; David Galbraith
Journal:  Nat Commun       Date:  2020-11-09       Impact factor: 14.919

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