The global abundance of tree palms
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Published version
Author(s)
Type
Journal Article
Abstract
Aim
Palms are an iconic, diverse and often abundant component of tropical ecosystems that provide many ecosystem services. Being monocots, tree palms are evolutionarily, morphologically and physiologically distinct from other trees, and these differences have important consequences for ecosystem services (e.g., carbon sequestration and storage) and in terms of responses to climate change. We quantified global patterns of tree palm relative abundance to help improve understanding of tropical forests and reduce uncertainty about these ecosystems under climate change.
Location
Tropical and subtropical moist forests.
Time period
Current.
Major taxa studied
Palms (Arecaceae).
Methods
We assembled a pantropical dataset of 2,548 forest plots (covering 1,191 ha) and quantified tree palm (i.e., ≥10 cm diameter at breast height) abundance relative to co‐occurring non‐palm trees. We compared the relative abundance of tree palms across biogeographical realms and tested for associations with palaeoclimate stability, current climate, edaphic conditions and metrics of forest structure.
Results
On average, the relative abundance of tree palms was more than five times larger between Neotropical locations and other biogeographical realms. Tree palms were absent in most locations outside the Neotropics but present in >80% of Neotropical locations. The relative abundance of tree palms was more strongly associated with local conditions (e.g., higher mean annual precipitation, lower soil fertility, shallower water table and lower plot mean wood density) than metrics of long‐term climate stability. Life‐form diversity also influenced the patterns; palm assemblages outside the Neotropics comprise many non‐tree (e.g., climbing) palms. Finally, we show that tree palms can influence estimates of above‐ground biomass, but the magnitude and direction of the effect require additional work.
Conclusions
Tree palms are not only quintessentially tropical, but they are also overwhelmingly Neotropical. Future work to understand the contributions of tree palms to biomass estimates and carbon cycling will be particularly crucial in Neotropical forests.
Palms are an iconic, diverse and often abundant component of tropical ecosystems that provide many ecosystem services. Being monocots, tree palms are evolutionarily, morphologically and physiologically distinct from other trees, and these differences have important consequences for ecosystem services (e.g., carbon sequestration and storage) and in terms of responses to climate change. We quantified global patterns of tree palm relative abundance to help improve understanding of tropical forests and reduce uncertainty about these ecosystems under climate change.
Location
Tropical and subtropical moist forests.
Time period
Current.
Major taxa studied
Palms (Arecaceae).
Methods
We assembled a pantropical dataset of 2,548 forest plots (covering 1,191 ha) and quantified tree palm (i.e., ≥10 cm diameter at breast height) abundance relative to co‐occurring non‐palm trees. We compared the relative abundance of tree palms across biogeographical realms and tested for associations with palaeoclimate stability, current climate, edaphic conditions and metrics of forest structure.
Results
On average, the relative abundance of tree palms was more than five times larger between Neotropical locations and other biogeographical realms. Tree palms were absent in most locations outside the Neotropics but present in >80% of Neotropical locations. The relative abundance of tree palms was more strongly associated with local conditions (e.g., higher mean annual precipitation, lower soil fertility, shallower water table and lower plot mean wood density) than metrics of long‐term climate stability. Life‐form diversity also influenced the patterns; palm assemblages outside the Neotropics comprise many non‐tree (e.g., climbing) palms. Finally, we show that tree palms can influence estimates of above‐ground biomass, but the magnitude and direction of the effect require additional work.
Conclusions
Tree palms are not only quintessentially tropical, but they are also overwhelmingly Neotropical. Future work to understand the contributions of tree palms to biomass estimates and carbon cycling will be particularly crucial in Neotropical forests.
Date Issued
2020-09
Date Acceptance
2020-05-04
Citation
Global Ecology and Biogeography, 2020, 29 (9), pp.1495-1514
ISSN
1466-822X
Publisher
Wiley
Start Page
1495
End Page
1514
Journal / Book Title
Global Ecology and Biogeography
Volume
29
Issue
9
Copyright Statement
© 2020 The Authors. Global Ecology and Biogeography published by John Wiley & Sons Ltd
This is an open access article under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
This is an open access article under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
License URL
Sponsor
Rainforest Research Sdn Bhd
Identifier
https://onlinelibrary.wiley.com/doi/full/10.1111/geb.13123
Grant Number
LBEE_P34395
Subjects
Science & Technology
Life Sciences & Biomedicine
Physical Sciences
Ecology
Geography, Physical
Environmental Sciences & Ecology
Physical Geography
above-ground biomass
abundance patterns
Arecaceae
local abiotic conditions
Neotropics
pantropical biogeography
tropical rainforest
wood density
CARBON STORAGE
DIVERSIFICATION HISTORY
AMAZONIAN FOREST
BIOMASS
DIVERSITY
EVOLUTION
PATTERNS
AFRICAN
ALLOMETRY
ECOLOGY
Ecology
0406 Physical Geography and Environmental Geoscience
0501 Ecological Applications
0602 Ecology
Publication Status
Published
Article Number
geb.13123
Date Publish Online
2020-07-08