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Hyperdominance and Rarity in Amazonian Secondary Forests
Fernando Elias1, Joice Ferreira2, Erika Berenguer3,4
1Botany Coordination, LEAF, Museu Paraense Emílio Goeldi, Belém, Pará, Brazil.
None:
Recent studies have shown that a few tree species dominate abundance and carbon storage in undisturbed Amazonian forests. However, this pattern remains poorly understood in forests regrowing after deforestation. Understanding dominance patterns in secondary forests is important as it could improve insights into their functioning and guide management and restoration efforts. We used unweighted and novel plot-weighted approaches to assess hyperdominance in abundance and carbon storage of trees and palms during secondary forest recovery, using data from 102 plots across four regions in the eastern Amazon, separated by an average distance of 600 km (range: 150-1000 km). Secondary forests show high levels of hyperdominance in all approaches, with just 15-25 species (3%-6%) accounting for over 50% of abundance and carbon storage. A small subset of species (~9%) were found across all regions and successional stages, highlighting their key role in ecosystem structure and function during forest regrowth. Annona exsucca, Cecropia palmata, Tapirira guianensis, and Inga alba formed a consistent core of hyperdominant species across stem size classes, metrics, and approaches, jointly accounting for roughly 16%-27% of total abundance and carbon storage. For larger stems ≥ 10 cm DBH, hyperdominant species exhibited lower wood density compared to non-hyperdominant species across all successional stages, suggesting these specialist pioneers have distinct ecological strategies from the rest of the community. Our findings indicate that secondary forest functioning may be largely predicted by a relatively limited set of species, providing a framework for future research ranging from ecophysiology to remote sensing of canopy traits and restoration planning.
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