Limited intraspecific variation in drought resistance along a pronounced tropical rainfall gradient.

Bettina M J Engelbrecht, Liza S Comita, F Andrew Jones, Eric J Manzané-Pinzón, Leonor Álvarez-Cansino, Ivania Cerón-Souza, Blexein Contreras, Nelson Jaén-Barrios, Natalie Ferro

Journal: Proceedings of the National Academy of Sciences of the United States of America 2024;121(23):e2316971121

PMID: 38809703

Abstract

Assessing within-species variation in response to drought is crucial for predicting species' responses to climate change and informing restoration and conservation efforts, yet experimental data are lacking for the vast majority of tropical tree species. We assessed intraspecific variation in response to water availability across a strong rainfall gradient for 16 tropical tree species using reciprocal transplant and common garden field experiments, along with measurements of gene flow and key functional traits linked to drought resistance. Although drought resistance varies widely among species in these forests, we found little evidence for within-species variation in drought resistance. For the majority of functional traits measured, we detected no significant intraspecific variation. The few traits that did vary significantly between drier and wetter origins of the same species all showed relationships opposite to expectations based on drought stress. Furthermore, seedlings of the same species originating from drier and wetter sites performed equally well under drought conditions in the common garden experiment and at the driest transplant site. However, contrary to expectation, wetter-origin seedlings survived better than drier-origin seedlings under wetter conditions in both the reciprocal transplant and common garden experiment, potentially due to lower insect herbivory. Our study provides the most comprehensive picture to date of intraspecific variation in tropical tree species' responses to water availability. Our findings suggest that while drought plays an important role in shaping species composition across moist tropical forests, its influence on within-species variation is limited.

Address: The Forest School, Yale School of the Environment, Yale University, New Haven, CT 06511.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Department of Botany and Plant Pathology, Oregon State University, Corvallis, OR.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Departamento de Ciencias Naturales, Facultad de Ciencias y Tecnología, Universidad Tecnológica de Panamá, Panama City, Panamá.; Department of Plant Biology and Ecology, Faculty of Biology, University of Seville, Seville, Spain.; Department of Plant Ecology, Center for Ecology and Environmental Research, University of Bayreuth, Bayreuth, Germany.; Department of Botany and Plant Pathology, Oregon State University, Corvallis, OR.; Centro de Investigación Tibaitatá, Mosquera Corporación Colombiana de Investigación Agropecuaria (Agrosavia), Cundinamarca 250047, Colombia.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Department of Plant Biology, Institute of Biology, University of Campinas, Campinas CEP 13083-970, SP, Brazil.; Smithsonian Tropical Research Institute Apartado Postal 0843-03092, Panama City, Panamá.; Department of Plant Ecology, Center for Ecology and Environmental Research, University of Bayreuth, Bayreuth, Germany.

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