Seed Dispersal Anachronisms: Rethinking the Fruits Extinct Megafauna Ate
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Open Access
- 5 March 2008
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLOS ONE
- Vol. 3 (3), e1745
- https://doi.org/10.1371/journal.pone.0001745
Abstract
Some neotropical, fleshy-fruited plants have fruits structurally similar to paleotropical fruits dispersed by megafauna (mammals >103 kg), yet these dispersers were extinct in South America 10–15 Kyr BP. Anachronic dispersal systems are best explained by interactions with extinct animals and show impaired dispersal resulting in altered seed dispersal dynamics. We introduce an operational definition of megafaunal fruits and perform a comparative analysis of 103 Neotropical fruit species fitting this dispersal mode. We define two megafaunal fruit types based on previous analyses of elephant fruits: fruits 4–10 cm in diameter with up to five large seeds, and fruits >10 cm diameter with numerous small seeds. Megafaunal fruits are well represented in unrelated families such as Sapotaceae, Fabaceae, Solanaceae, Apocynaceae, Malvaceae, Caryocaraceae, and Arecaceae and combine an overbuilt design (large fruit mass and size) with either a single or few (100 seeds). Within-family and within-genus contrasts between megafaunal and non-megafaunal groups of species indicate a marked difference in fruit diameter and fruit mass but less so for individual seed mass, with a significant trend for megafaunal fruits to have larger seeds and seediness. Megafaunal fruits allow plants to circumvent the trade-off between seed size and dispersal by relying on frugivores able to disperse enormous seed loads over long-distances. Present-day seed dispersal by scatter-hoarding rodents, introduced livestock, runoff, flooding, gravity, and human-mediated dispersal allowed survival of megafauna-dependent fruit species after extinction of the major seed dispersers. Megafauna extinction had several potential consequences, such as a scale shift reducing the seed dispersal distances, increasingly clumped spatial patterns, reduced geographic ranges and limited genetic variation and increased among-population structuring. These effects could be extended to other plant species dispersed by large vertebrates in present-day, defaunated communities.Keywords
This publication has 87 references indexed in Scilit:
- Differential contribution of frugivores to complex seed dispersal patternsProceedings of the National Academy of Sciences, 2007
- Balanites wilsoniana: Regeneration with and without elephantsBiological Conservation, 2007
- An update of the Angiosperm Phylogeny Group classification for the orders and families of flowering plants: APG IIBotanical Journal of the Linnean Society, 2003
- An Advantage of Large Seed Size: Tolerating Rather than Succumbing to Seed Predators1Biotropica, 1998
- How and Why Has African Solanum Chosen the Elephants Only as the Seed Disperser?Tropics, 1995
- The Sizes of Vertebrate-Dispersed Fruits: A Neotropical-Paleotropical ComparisonThe American Naturalist, 1993
- Trade-offs among dispersal strategies in British plantsNature, 1993
- Seed dispersal by greater one-horned rhinoceros (Rhinoceros unicornis) and the flora of Rhinoceros latrinesMammalia, 1991
- Trade-Offs in Life-History EvolutionFunctional Ecology, 1989
- Diet and feeding behaviour of the forest elephantMammalia, 1981