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Phosphorus limitation of early growth differs between nitrogen-fixing and nonfixing dry tropical forest tree species

Research output: Contribution to journalArticlepeer-review

Abstract

Tropical forests are often characterized by low soil phosphorus (P) availability, suggesting that P limits plant performance. However, how seedlings from different functional types respond to soil P availability is poorly known but important for understanding and modeling forest dynamics under changing environmental conditions. We grew four nitrogen (N)-fixing Fabaceae and seven diverse non-N-fixing tropical dry forest tree species in a shade house under three P fertilization treatments and evaluated carbon (C) allocation responses, P demand, P-use, investment in P acquisition traits, and correlations among P acquisition traits. Nitrogen fixers grew larger with increasing P addition in contrast to non-N fixers, which showed fewer responses in C allocation and P use. Foliar P increased with P addition for both functional types, while P acquisition strategies did not vary among treatments but differed between functional types, with N fixers showing higher root phosphatase activity (RPA) than nonfixers. Growth responses suggest that N fixers are limited by P, but nonfixers may be limited by other resources. However, regardless of limitation, P acquisition traits such as mycorrhizal colonization and RPA were nonplastic across a steep P gradient. Differential limitation among plant functional types has implications for forest succession and earth system models.

Original languageEnglish (US)
Pages (from-to)766-779
Number of pages14
JournalNew Phytologist
Volume237
Issue number3
DOIs
StatePublished - Feb 2023

Bibliographical note

Funding Information:
We thank Ofelia Gonzalez, David Pereira, Michelle Monge, Caitlin Looby, Alejandra Perez, Duncan Coles, and Caroline Bray for their dedicated field research and help in data entry. We appreciate logistical assistance from Estacion Experimental Horizontes staff, Maria Marta Chavarria, Roberto Cordero, Jessica Gutknecht, and Dan Du. We are grateful to John Fieberg, Jesus Pinto‐Ledezma, Erick Calderon, Leland Werden, and Chris Smith‐Martin for statistical advice. Susan Galatowitsch, Peter Kennedy, and Jessica Gutknecht provided excellent feedback that helped improve this manuscript. Financial support for this project was provided by the Faculty for the Future Foundation, the Bell Museum of Natural History, University of Minnesota and US Department of Energy, the Office of Science, the Office of Biological and Environmental Research, and the Terrestrial Ecosystem Science Program (award nos. DESC0014363 and DESC0020344).

Publisher Copyright:
© 2022 The Authors. New Phytologist © 2022 New Phytologist Foundation.

Keywords

  • arbuscular mycorrhizae
  • phosphorus acquisition strategies
  • photosynthetic phosphorus-use efficiency
  • root phosphatase
  • seedlings
  • stoichiometry

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